EP1701738A2 - Methods for porducing storage stable viruses and immunogenic compositions thereof - Google Patents

Methods for porducing storage stable viruses and immunogenic compositions thereof

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Publication number
EP1701738A2
EP1701738A2 EP04814040A EP04814040A EP1701738A2 EP 1701738 A2 EP1701738 A2 EP 1701738A2 EP 04814040 A EP04814040 A EP 04814040A EP 04814040 A EP04814040 A EP 04814040A EP 1701738 A2 EP1701738 A2 EP 1701738A2
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EP
European Patent Office
Prior art keywords
virus
temperature
composition
virus composition
glutamic acid
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Granted
Application number
EP04814040A
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German (de)
French (fr)
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EP1701738B1 (en
Inventor
Jee Loon Look
Vladimir G. Frolov
Nandini Konar
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Wyeth LLC
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Wyeth LLC
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K39/12Viral antigens
    • A61K39/155Paramyxoviridae, e.g. parainfluenza virus
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K39/12Viral antigens
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/02Inorganic compounds
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • A61K47/16Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite containing nitrogen, e.g. nitro-, nitroso-, azo-compounds, nitriles, cyanates
    • A61K47/18Amines; Amides; Ureas; Quaternary ammonium compounds; Amino acids; Oligopeptides having up to five amino acids
    • A61K47/183Amino acids, e.g. glycine, EDTA or aspartame
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/30Macromolecular organic or inorganic compounds, e.g. inorganic polyphosphates
    • A61K47/42Proteins; Polypeptides; Degradation products thereof; Derivatives thereof, e.g. albumin, gelatin or zein
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0043Nose
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • A61P31/14Antivirals for RNA viruses
    • A61P31/16Antivirals for RNA viruses for influenza or rhinoviruses
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N7/00Viruses; Bacteriophages; Compositions thereof; Preparation or purification thereof
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K2039/51Medicinal preparations containing antigens or antibodies comprising whole cells, viruses or DNA/RNA
    • A61K2039/525Virus
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K2039/54Medicinal preparations containing antigens or antibodies characterised by the route of administration
    • A61K2039/541Mucosal route
    • A61K2039/543Mucosal route intranasal
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2760/00MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA ssRNA viruses negative-sense
    • C12N2760/00011Details
    • C12N2760/18011Paramyxoviridae
    • C12N2760/18511Pneumovirus, e.g. human respiratory syncytial virus
    • C12N2760/18534Use of virus or viral component as vaccine, e.g. live-attenuated or inactivated virus, VLP, viral protein
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2760/00MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA ssRNA viruses negative-sense
    • C12N2760/00011Details
    • C12N2760/18011Paramyxoviridae
    • C12N2760/18611Respirovirus, e.g. Bovine, human parainfluenza 1,3
    • C12N2760/18634Use of virus or viral component as vaccine, e.g. live-attenuated or inactivated virus, VLP, viral protein
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2760/00MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA ssRNA viruses negative-sense
    • C12N2760/00011Details
    • C12N2760/18011Paramyxoviridae
    • C12N2760/18611Respirovirus, e.g. Bovine, human parainfluenza 1,3
    • C12N2760/18651Methods of production or purification of viral material

Definitions

  • the present invention generally relates to the fields of virology, viral formulation and process development. More particularly, the invention relates to methods for producing storage stable virus compositions, wherein the compositions are storage stable as a lyophilized solid composition or a frozen liquid composition.
  • RSV Human respiratory syncytial virus
  • PAV parainfluenza virus
  • RSV strains have been developed and tested in RSV-seronegative children during the past twenty years.
  • the most pursued approaches for live attenuation of RSV have been cold-passaged (cp) RSV, temperature-sensitive (ts) RSV mutants and cold-passage temperature sensitive (cpts) RSV mutants (Kneyber and Kimpen, 2002).
  • RSV mutants such as cpts-248, cpts-248/404, cpts-530 and PIV-3 mutant cp-45 are currently being evaluated in laboratories and clinical trials.
  • RSV is a heat labile virus, which is inactivated in less than three months during storage at -65°C to -86°C (Hambling, 1964; Wulff et al., 1964; Gupta et al., 1996). It is therefore highly desirable to identify methods for producing RSV, PIV or RSV/PIV immunogenic compositions which are storage stable.
  • virus formulation and process development for methods of producing storage stable virus compositions such as herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus, Venezuelan equine encephalitis virus and the like.
  • herpes simplex virus such as herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepati
  • the present invention broadly relates to processes for producing storage stable virus compositions and immunogenic compositions thereof.
  • the invention is directed to processes for producing storage stable virus compositions comprising a respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof. More particularly, in certain embodiments, the invention relates to one or more formulations and process steps which result in storage stable virus compositions, wherein the virus composition is storage stable as a lyophilized solid composition or a frozen liquid composition.
  • the invention relates to one or more formulations and process steps which result in storage stable RSV, PIV or RSV/PIV compositions, wherein the RSV, PIV or RSV/PIV composition is storage stable as a lyophilized solid composition or a frozen liquid composition.
  • the invention is directed to a process for producing a small volume storage stable virus composition.
  • the invention is directed to a process for producing a small volume storage stable virus composition comprising RSV, a PIV, or a combination thereof, the process comprising (a) freezing the virus composition below its glass transition temperature in a time of about sixty minutes or less and (b) lyophilizing the virus composition, wherein the lyophilized virus composition is stable for at least one year at a storage temperature of about 1°C to about 10°C.
  • the glass transition temperature is a temperature of about -45°C and is reached in a time of about sixty minutes or less.
  • the glass transition temperature is a temperature of about -35°C and is reached in a time of about forty minutes or less.
  • the glass transition temperature of about -35°C is reached in a time of about twenty minutes or less.
  • the volume of the virus composition is about 0.2 mL to about 1.0 rriL.
  • the virus composition is comprised in a suitable container means, wherein the container means is further defined as a vial, a tube or a nasal spray device.
  • the RSV is further defined as group A RSV (RSV-A), group B RSV (RSV-B), or a chimeric recombinant RSV comprising one or more antigens of each of group A and B (RSV-AB), and the PIV is further defined as PIV type 1 (PIV-1), PIV type 2 (PIV-2) or PIV type 3 (PIV-3).
  • a small volume storage stable virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM N-2-hydroxyethylpiperazine-N'-2- ethanesulfonic acid (HEPES).
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride.
  • a small volume storage stable virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 10 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In certain other embodiments, the 10 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution
  • sucrose comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid, L(+)-glutamic acid monosodium salt, a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt, human albumin (HA) and/or soy peptone.
  • sucrose L(+)-glutamic acid, L(+)-glutamic acid monosodium salt, a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt, human albumin (HA) and/or soy peptone.
  • the 5.0 mM to about 20 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
  • the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
  • the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprises about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, about 0.01 mM to about 1 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone.
  • the 10 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 12.5 mM HEPES, about 0.01 mM to about 0.5 mM magnesium chloride and about 0.01 mM to about 0.5 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
  • the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
  • the 10 mM phosphate buffer solution comprises about 0.25 mM to about 12.5 mM HEPES, about 0.01 mM to about 0.5 mM magnesium chloride, about 0.01 mM to about 0.5 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone.
  • the storage temperature of the small volume storage stable virus composition is about 5°C. In certain other embodiments, the virus composition has less than about a 1.0 log PFU loss after one year of storage at about 1°C to about 10°C. In yet another embodiment, the virus composition is at least 4.0 log PFU per 0.2 mL after one year of storage at about 1 °C to about 10°C.
  • lyophilizing the virus composition is further defined as (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) placing the vial on a lyophilization shelf and decreasing the shelf temperature from 5°C to -50°C at a rate of about -1.0°C per minute to about -2.0°C per minute; (c) holding the shelf temperature at about -50°C for 60 minutes; (d) reducing the lyophilization chamber pressure to 0.10 Torr and holding the shelf temperature at about -50°C for 30-60 minutes; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature
  • lyophilizing the virus composition is further defined as (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) freezing a lyophilization shelf to a temperature of about -70°C; (c) placing the vial on the lyophilization shelf and holding the temperature at about -70°C for about 60 minutes; (d) reducing the lyophilization chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -50°C at a rate of about 1.0°C per minute; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C per minute at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at
  • the invention is directed to a process for producing a bulk (or large) volume, lyophilization stable virus composition.
  • the invention is directed to a process for producing a bulk (or large) volume, lyophilization stable virus composition comprising RSV, PIV, or a combination thereof, the process comprising (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; (b) freezing the virus composition in a liquid nitrogen bath for at least twenty minutes and (c) lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization.
  • the bulk volume virus composition is at least 5.0 log PFU per dose after lyophilization.
  • the glass transition temperature is a temperature of about -35°C. In another embodiment, the glass transition temperature is a temperature of about -30°C to about -40°C.
  • the lyophilization tray is a Lyoguard ® lyophilization tray (W. L. Gore and Associates; Newark, DE).
  • the bulk volume of the virus composition is at least 500 mL per lyophilization tray. In other embodiments, the bulk volume of the virus composition is at least 1000 mL per lyophilization tray.
  • the RSV is further defined as RSV-A, RSV-B, or a chimeric recombinant RSV comprising one or more antigens of each of group A and B (RSV- AB), and the PIV is further defined as PIV-1 , PIV-2 or PIV-3.
  • the bulk volume virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 2.5 mM to about 25 mM HEPES.
  • the bulk volume virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 2.5 mM to
  • 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride.
  • the bulk volume virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 10 mM phosphate buffer solution further comprises about 2.5 mM to about 25 mM HEPES.
  • the 10 mM phosphate buffer solution further comprises about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride.
  • the 5.0 mM to about 20 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid, L(+)- glutamic acid monosodium salt, a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt, human albumin (HA) and/or soy peptone.
  • sucrose L(+)-glutamic acid, L(+)- glutamic acid monosodium salt, a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt, human albumin (HA) and/or soy peptone.
  • the 5.0 mM to about 20 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
  • the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
  • the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprises about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride, about 0.1 mM to about 1 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone.
  • the 10 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 2.5 mM to about 12.5 mM HEPES, about 0.1 mM to about 0.5 mM magnesium chloride and about 0.1 mM to about 0.5 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
  • the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
  • the 10 mM phosphate buffer solution comprises about 2.5 mM to about 12.5 mM HEPES, about 0.1 mM to about 0.5 mM magnesium chloride, about 0.1 mM to about 0.5 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone.
  • lyophilizing the bulk volume virus composition is further defined as (a) placing the lyophilization tray comprising the frozen virus composition at a temperature of about -50°C on a lyophilization shelf pre-cooled to a temperature of about -50°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -50°C to -23°C at a rate of about 0.23°C per minute at about 0.10 Torr; (c) holding the shelf temperature at about -23°C for about 80 hours to about 100 hours; (d) reducing the lyophilization chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the shelf temperature at about 15°C and at about 0.02 Torr for about 30 hours to about 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding
  • lyophilizing the bulk volume virus composition is further defined as (a) placing the tray comprising the frozen virus composition at a temperature of about -70°C on a lyophilization shelf pre-cooled to a temperature of about -70°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -23°C at a rate of about 0.23°C per minute; (c) holding the shelf temperature at about -23°C at about 0.10 Torr for about 80 to 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the temperature at about 15°C and 0.02 Torr for about 30 to 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.020 Torr; (g) holding the temperature at about 25°C for about 10 hours and (
  • the invention is directed to a process for producing a storage stable frozen liquid virus composition.
  • the invention is directed to a process for producing a storage stable frozen liquid virus composition comprising RSV, PIV, or a combination thereof, the process comprising (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a suitable container means; (c) inserting the container of step (b) into a metal holder; (d) placing the metal holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the container from the metal holder and (f) storing the container at temperature from about -20°C to about -70°C, wherein the virus composition after steps (a) through (f) has less than about a 0.5 log PFU loss after 6 months storage.
  • the container means is a nasal spray device.
  • the nasal spray device is a BD AccusprayTM nasal spray device (BD Medical Pharmaceutical Systems; Franklin Lakes, NJ).
  • the metal holder is aluminum.
  • the metal holder is stainless steel.
  • the virus composition is at least 4.0 log PFU/0.2 mL after steps (a) through (f).
  • the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -20°C.
  • the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -70°C.
  • the liquid virus composition is formulated in the absence of a protein stabilizer.
  • the RSV is further defined as RSV-A, RSV-B, or a chimeric recombinant RSV comprising one or more antigens of each of group A and B (RSV- AB), and the PIV is further defined as PIV-1 , PIV-2 or PIV-3.
  • the liquid virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In certain other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In certain embodiments, the liquid virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 10 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES.
  • the 10 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride.
  • the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride further comprises sucrose and L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture thereof.
  • the 5.0 mM to about 20 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or about a 4.9 mM mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt.
  • the 10 mM phosphate buffer solution with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or about a 4.9 mM mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt.
  • the invention is directed to a small volume lyophilized virus composition produced according to the process of freezing a virus composition below its glass transition temperature in a time of sixty minutes or less and lyophilizing the virus composition, wherein the lyophilized virus composition is a stable for at least one year at a storage temperature of about 1°C to about 10°C.
  • the invention is directed to a bulk volume lyophilized virus composition produced according to the process of placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; freezing the virus composition below its glass transition temperature for at least about twenty minutes in a liquid nitrogen bath and lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization.
  • the invention is directed to a storage stable frozen liquid virus composition produced according to the process of (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a suitable container means; (c) inserting the container of step (b) into a metal holder; (d) placing the metal holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the container from the metal holder and (f) storing the container at temperature from about -20°C to about -70°C, wherein the virus composition after steps (a) through (f) has less than about a 0.5 log PFU loss after 6 months storage.
  • the invention is directed to an immunogenic composition comprising a virus composition produced according to a lyophilization process of the invention, wherein the virus is dissolved, diluted or suspended in a pharmaceutically acceptable carrier.
  • the invention is directed to an immunogenic composition comprising a frozen liquid virus composition produced according to a process of the invention.
  • FIGURES shows a schematic representation of the positioning of the BD AccusprayTM devices in the 96 well aluminum holder that was used to freeze formulations, which is labeled as follows: (1 ) an aluminum or steel holder, (2) formulation filled into the device, (3) BD Accuspray device, (4) stoppers and (5) empty wells.
  • Figure 2 shows the kinetics of freezing a formulation in a -70°C freezer versus freezing the same formulation with liquid nitrogen. The liquid formulation was added to a BD AccusprayTM device and freezing was performed by placing the aluminum holder on a metal surface cooled by liquid nitrogen or by placing the aluminum holder on a shelf of a -70°C freezer.
  • invention described hereinafter addresses a need in the art for methods of producing storage stable virus compositions.
  • invention described hereinafter addresses a need in the art for methods of producing storage stable virus compositions comprising respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof, for use in immunogenic compositions which prevent or ameliorate respiratory disease in infants, young children, the elderly and immunocompromised.
  • RSV respiratory syncytial virus
  • PAV parainfluenza virus
  • the invention addresses a need in the art for methods of producing storage stable virus compositions comprising one or more viruses such as herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella- Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus, Venezuelan equine encephalitis virus and the like, for use in immunogenic compositions which prevent or ameliorate disease caused by one or more of these viruses.
  • viruses such as herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella- Zoster virus, mumps virus, me
  • the invention is directed to methods for producing small volumes of lyophilized virus compositions.
  • the invention is directed to methods for producing small volumes of lyophilized virus compositions, wherein the lyophilized composition is storage stable for at least one year at a storage temperature of about 1°C to about 10°C.
  • the invention is directed to methods for producing large (or bulk) volumes of lyophilized virus compositions.
  • the invention is directed to methods for producing large (or bulk) volumes of lyophilized virus compositions, wherein the lyophilized composition has less than about a 0.5 log plaque-forming units (PFU) loss relative to the composition before lyophilization.
  • PFU plaque-forming units
  • the invention is directed to methods for producing frozen liquid virus compositions. In certain embodiments, the invention is directed to methods for producing frozen liquid virus compositions, wherein the composition has less than about a 0.5 log PFU loss after six months storage. In other embodiments, the invention provides storage stable virus compositions produced according to the methods of the invention. In other embodiments, the invention provides immunogenic compositions produced according to the methods of the invention.
  • RSV belongs to the genus Pneumoviridae, which is classified within the family of Paramyxoviridae.
  • the virion contains a single stranded negative sense RNA of 15,222 base pairs which codes for ten viral proteins. These ten proteins comprise three envelope-associated glycoproteins termed G, F and SH; two matrix proteins M and M2, three nucleocapsid proteins L, N and P and the nonstructural proteins 1 B and 1C.
  • G, F and SH envelope-associated glycoproteins termed G, F and SH
  • M and M2 two matrix proteins
  • L three nucleocapsid proteins L, N and P
  • the nonstructural proteins 1 B and 1C Two groups of RSV, group A and group B, are identified on the basis of antigenic differences in the G protein and to a lesser extent the F protein. Antigenic differences can be found within the two groups.
  • the G protein shows a high degree of variation with only 53% amino acid homology between RSV groups A and B and up to 20% differences in G protein sequences within RSV group A.
  • RSV group A is represented as “RSV-A”
  • RSV group B is represented as "RSV-B”.
  • a storage stable RSV composition (or RSV/PIV combination) produced according to one of the methods of the invention is any attenuated RSV (e.g., attenuated RSV-A and attenuated RSV-B) which includes, but is not limited to, cold- passaged RSV mutants (cpRSV), temperature-sensitive RSV mutants (teRSV), cold- passaged temperature-sensitive RSV mutants (cpteRSV), cold-adapted RSV mutants (caRSV), small-plaque RSV mutants (spRSV), and the like.
  • cpRSV cold- passaged RSV mutants
  • teRSV temperature-sensitive RSV mutants
  • cpteRSV cold- passaged temperature-sensitive RSV mutants
  • caRSV cold-adapted RSV mutants
  • small-plaque RSV mutants spRSV
  • an attenuated RSV of the invention is cpteRSV 248/404 (ATCC VR2452), also known as LRSV-404 and all recombinant modifications made from this strain including recombinant RSV-AB strains.
  • RSV strains of the invention include: (a) rA2cp248/404 ⁇ SH (also known as LRSV-rA36); (b) rA2cp248/404/1030 ⁇ SH (also known as LRSV-rA38); (c) rA2cp248/404/1030 (also known as LRSV-rA39); (d) rA2cp248/404 ⁇ NS2 (also known as LRSV-rA41 ); (e) rABcp248/404/1030 (also known as LRSV-rAB1); (f) rABcp248/404 ⁇ SH (also known as LRSV-rAB2); (g) rABcp248/404 ⁇ NS2 (also known as LRSV-rAB4); (h) cpteRSV 530/1009 (ATCC VR2451) and all recombinant modifications made from this strain including recombinant RSV-AB strains such as rA2c
  • Respirovirus genus of the Paramyxoviridae family Its genome is a single strand of negative-sense RNA 15,462 nucleotides in length.
  • At least eight proteins are encoded by PIV-3: the nucleocapsid protein NP, the phosphoprotein P, the nonstructural protein C, the D protein, the matrix protein M, the fusion glycoprotein F, the hemagglutinin-neuraminidase protein HN, and the large polymerase protein L.
  • the HN and F proteins are envelope-associated, surface glycoproteins, which are the major neutralization and protective antigens.
  • PIV-1 Human parainfluenza virus type 1 (PIV-1) is another member of the Respirovirus genus of the Paramyxoviridae. Its genome is a single strand of negative-sense RNA approximately 15,600 nucleotides in length.
  • the order of gene products encoded by PIV-1 includes the nucleocapsid protein NP, the phosphoprotein P (and numerous other gene products encoded by the P open reading frame), the matrix protein M, the fusion glycoprotein F, the hemagglutinin- neuraminidase protein HN, and the large polymerase protein L.
  • Human parainfluenza virus type 2 (PIV-2) is a member of the Rubulavirus genus of the Paramyxoviridae. Its genome is a single strand of negative-sense RNA approximatelyl 5,654 nucleotides in length.
  • the order of gene products encoded by PIV-2 includes the nucleocapsid protein NP, the phosphoprotein P, the V protein, the matrix protein M, the fusion glycoprotein F, the hemagglutinin-neuraminidase protein HN, and the large polymerase protein L.
  • a storage stable PIV composition (or RSV/PIV combination) produced according to one of the methods of the invention is any attenuated PIV, which includes, but is not limited to, cold-passaged PIV mutants (cpPIV), temperature- sensitive PIV mutants (tePIV), cold-passaged temperature-sensitive PIV mutants (cptePIV), cold-adapted PIV mutants (caPIV), small-plaque PIV mutants (spPIV) and the like.
  • an attenuated PIV of the invention is the cold- passaged PIV-3 mutant of the JS wild-type strain designated cp-45 (or JS cp45).
  • the PIV-3 cp-45 mutant is further attenuated using the "menu" of attenuating PIV-3 mutations described in U.S. Patent Nos. 6,410,023 and 5,869,036 (each incorporated herein by reference).
  • a storage stable virus composition produced according to one of the methods of the invention includes, but is not limited to, one or more of the viruses, or vectors thereof, set forth in Table 1. TABLE 1 VIRUS FAMILIES
  • Togaviruses e.g., Dengue virus
  • Flaviviruses e.g., Hepatitis C virus
  • Orthomyxoviruses e.g., Influenza virus
  • Herpesviridae Herpes Simplex Viruses Epstein-Barr virus Cytomegalovirus Varicella-Zoster virus Human Herpesvirus-6 human herpesvirus-7 Cercopithecine Herpes Virus 1 (B virus) XVI. Poxviridae Poxviruses XVIII. Hepadnaviridae Hepatitis B virus XIX. Adenoviridae
  • the invention is directed to a process for producing small volumes of storage stable virus compositions.
  • the invention is directed to a process for producing small volumes of storage stable virus compositions comprising RSV, PIV, or a combination thereof.
  • the process comprises freezing the virus composition below its glass transition temperature (T g ) in a time of sixty minutes or less and lyophilizing the virus composition.
  • T g glass transition temperature
  • the lyophilized virus composition which is a solid powder or cake, is stable for at least one year at a storage temperature of about 1 °C to about 10°C.
  • Small volumes of storage stable lyophilized virus compositions are of particular utility as single or multi- dosage immunogenic compositions, wherein the lyophilized powder is stored for a given amount of time.
  • a "small volume" of a virus composition is between about 100 ⁇ L to about 5 mL. In certain embodiments, a small volume virus composition is between about 200 ⁇ L to about 1 mL. In one embodiment, the volume of a virus composition is 500 ⁇ L.
  • a small volume virus composition is frozen and lyophilized in a suitable container means.
  • a suitable container means with respect to small volume virus compositions, is a container which can withstand the freezing and lyophilization temperatures and vacuum pressures.
  • a suitable container means for the production of small volume storage stable compositions is a vial, a tube, a syringe, a two-stage syringe or a nasal spray device. See for example U.S. Patent Nos. 5,489,266, 5,732,837 and 4,084,330, each of which is hereby incorporated by reference in its entirety. Additional container means for lyophilization are known and readily available to one of skill in the art.
  • a "RSV composition”, a "PIV composition” or a “RSV/PIV composition” comprises the virus (i.e., RSV, PIV or RSV/PIV), typically about 10 3 to 10 7 PFU of attenuated virus per mL and a pharmaceutically acceptable carrier.
  • a pharmaceutically acceptable carrier includes buffers, saline solutions, water, water for injection (WFI), protein stabilizers, sugars, amino acids, cryoprotectants, and the like.
  • a small volume virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride.
  • sucrose L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture thereof, human albumin (HA) and/or soy peptone.
  • the 10 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 12.5 mM HEPES, about 0.01 mM to about 0.5 mM magnesium chloride and about 0.01 mM to about 0.5 mM calcium chloride, further comprises about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 50 g/L sucrose and about 1.0 g/L to about 10.0 g/L HA.
  • the about 1.0 g/L to 10.0 g/L HA is substituted with about 50 g/L soy peptone (also known as Hy-Soy®; Quest International; Chicago, IL).
  • soy peptone also known as Hy-Soy®; Quest International; Chicago, IL.
  • the stable small volume virus compositions is formulated in the 5.0 mM to about 20 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, about 0.01 mM to about 1 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50
  • the process for producing a small volume storage stable virus composition comprises (a) freezing the virus composition below its glass transition temperature (T g ) in a time of sixty minutes or less and (b) lyophilizing the virus composition, wherein the lyophilized virus composition is a stable for at least one year at a storage temperature of about 1 °C to about 10°C.
  • the T g of a virus composition is typically about -35°C.
  • the T g of a virus composition is lower than about -35°C (e.g., about -42°C) in the presence of "carry over" salts such as sodium chloride.
  • T g glass transition temperature
  • freeze rate refers to the rate at which the virus composition reaches its Tg.
  • the freezing rate can be calculated as an approximate rate of temperature reduction during freezing. For example, if an initial temperature of a virus composition was 5°C and it was frozen to its Tg of -35°C in a time of 40 minutes, the "freezing rate" would be -1°C/minute.
  • the kinetics of freezing can vary among individual containers or, in case of bulk volumes, exhibit deviations at different points.
  • the freezing rate is an average rate of freezing observed in containers or measured at different locations of the material loaded on a tray.
  • the freezing rate of a small volume virus composition is about -0.5°C/minute to about -2.5°C/minute.
  • the T g is reached in a time of sixty minutes or less.
  • the T g is reached in a time of forty minutes or less.
  • the T g is reached in a time of twenty minutes or less.
  • the T g of a virus composition is readily determined by one of skill in the art without undue experimentation, using for example, thermodynamic measurements such as differential scanning calorimetry (DSC) (Hatley, 1992; Franks, 1992; Carpenter, 2002).
  • a lyophilization vial comprising a small volume virus composition is pre-cooled to a temperature of about 5°C.
  • the vial containing the pre- cooled virus composition is then placed on a lyophilization shelf and frozen to a temperature of at least -50°C, at a rate of about -1°C/minute to about -2°C/minute.
  • the vial containing pre-cooled virus composition is placed directly on a lyophilization shelf pre-frozen to a temperature of -70°C.
  • Lyophilization or freeze-d tying is a dehydration technique in which the sample solution (e.g., a RSV/PIV composition) is frozen and the solvent (e.g., water or buffer) is removed by sublimation by applying high vacuum.
  • the technique of lyophilization is well known to one of skill in the art (Rey and May, 1999).
  • a lyophilized small volume virus composition is prepared as follows: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) placing the vial on a lyophilization shelf and decreasing the shelf temperature from 5°C to -50°C at a rate of about -1.0°C per minute to about -2.0 °C per minute; (c) holding the shelf temperature at about -50°C for 60 minutes; (d) reducing chamber pressure to 0.10 Torr and holding the shelf temperature at about -50°C for 30-60 minutes; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature
  • lyophilizing the virus composition is prepared as follows: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) freezing a lyophilization shelf to a temperature of about -70°C; (c) placing the vial on the lyophilization shelf and holding the temperature at about -70°C for about 60 minutes; (d) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -50°C at a rate of about 1.0°C per minute; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C per minute at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C
  • the lyophilized small volume virus composition (i.e., the lyophilized cake) has less than about a 1.0 log PFU loss resulting from lyophilization and less than about a 1.0 log PFU loss after one year of storage at about 1°C to about 10°C (e.g., see Example 2, Example 3 and Tables 2 and 4-7).
  • the lyophilized small volume virus composition is at least 4.0 log PFU per 0.2 mL after one year of storage at about 1°C to about 10°C.
  • the invention is directed to a process for producing bulk (or large) volumes of a lyophilization stable virus compositions.
  • the invention is directed to a process for producing bulk (or large) volumes of a lyophilization stable virus compositions comprising RSV, PIV, or a combination thereof. The process comprises (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray (b) freezing the virus composition below its T g for at least about twenty minutes in a liquid nitrogen bath and (c) lyophilizing the virus composition.
  • the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before the lyophilization process.
  • the process for producing bulk volumes of the lyophilization stable virus compositions is of particular utility during the large scale production/manufacture of said virus compositions.
  • a "bulk" volume or a "large” volume of a virus composition is between about 50 mL to about 2 L per lyophilization tray.
  • a bulk volume is between about 250 mL to about 1 mL per lyophilization tray.
  • a bulk volume virus composition is 1 L per lyophilization tray.
  • a bulk volume virus composition is formulated with a pharmaceutically acceptable carrier which includes buffers, saline solutions, water, water for injection (WFI), protein stabilizers, sugars, amino acids, cryoprotectants, and the like.
  • a bulk volume virus composition is formulated in a phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts.
  • the concentration of the phosphate buffer is about 5.0 mM to about 20 mM, with a pH range of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 2.5 mM to about 25 mM HEPES.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride.
  • the bulk volume virus composition is formulated in a 10 mM phosphate buffer (pH of about 6.5 to about 7.8) and further comprises about 2.5 mM to about 12.5 mM HEPES.
  • the. 10 mM phosphate buffer solution further comprises about 0.1 mM to about 0.5 mM magnesium chloride and about 0.1 mM to about 0.5 mM calcium chloride.
  • the 5.0 mM to about 20 mM phosphate buffer solution (pH 6.5 to 7.8, 2.5-25 mM HEPES, 0.1-1.0 mM magnesium chloride, 0.1-1.0 mM calcium chloride) further comprises sucrose, L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture thereof, human albumin (HA) and/or soy peptone.
  • the 10 mM phosphate buffer solution (pH 6.5 to 7.8, 2.5-12.5 mM HEPES, 0.1-0.5 mM magnesium chloride, 0.1-0.5 mM calcium chloride) further comprises about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
  • the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
  • the 10 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprises about 2.5 mM to about 12.5 mM HEPES, about 0.1 mM to about 0.5 mM magnesium chloride, about 0.1 mM to about 0.5 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/mL soy peptone. 2.
  • the method for producing a bulk volume, lyophilization stable virus composition comprises (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; (b) freezing the virus composition below its T g for at least about twenty minutes in a liquid nitrogen bath; and (c) lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization.
  • the rate at which the small volume virus composition reaches its T g is critical for virus storage stability.
  • the rate at which the bulk volume virus composition reaches its T g is critical for virus storage stability.
  • an important step for preparing bulk volumes of virus is freezing the virus composition below its glass transition temperature for at least about twenty minutes in a liquid nitrogen bath.
  • Another important parameter for achieving bulk volume rapid freezing rates are the heat transfer properties, the composition and the configuration of the lyophilization tray.
  • a lyophilization tray with a large surface area further reduces the amount of time it takes for a bulk volume virus composition to reach its T g .
  • Lyophilization trays are well known in the art and include stainless steel trays, glass tray, aluminum trays, plastic trays and Lyoguard® trays.
  • the lyophilization tray is a Lyoguard ® lyophilization tray.
  • the tray is especially designed for bulk lyophilization with good heat transfer property.
  • the T g of the virus composition is a temperature of about -35°C. As stated previously, residual quantities (or “carry over") of sodium chloride from virus growth medium can further reduce the T g , but not below -50°C.
  • lyophilizing the virus composition is further defined as (a) placing the tray comprising the frozen virus composition at a temperature of about -50°C on a lyophilization shelf pre-cooled to a temperature of about -50°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -50°C to -23°C at a rate of about 0.23°C per minute at about 0.10 Torr (c) holding the shelf temperature at about -23°C for about 80 hours to about 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the shelf temperature at about 15°C and at about 0.02 Torr for about 30 hours to about 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding the shelf temperature at about 25°C and at about 0.
  • lyophilizing the bulk volume virus composition is further defined as (a) placing the tray comprising the frozen virus composition at a temperature of about -70°C on a lyophilization shelf pre-cooled to a temperature of about -70°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -23°C at a rate of about 0.23°C per minute; (c) holding the shelf temperature at about -23°C at about 0.10 Torr for about 80 to 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the temperature at about 15°C and 0.02 Torr for about 30 to 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.020 Torr; (g) holding the temperature at about 25°C for about 10 hours and (
  • the lyophilized bulk volume virus composition (i.e., the lyophilized cake) has less than about a 1.0 log PFU loss resulting from lyophilization, and less than about a 1.0 log PFU loss after one year of storage at about 1°C to about 10°C (e.g., see Example 4).
  • the invention is directed to a process for producing storage stable liquid virus compositions. In one embodiment, the invention is directed to a process for producing storage stable liquid virus compositions comprising RSV, PIV, or a combination thereof.
  • the process comprises (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a suitable container means; (c) inserting the container of step (b) into a metal container holder; (d) placing the metal container holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the container from the metal container holder and (f) storing the container at a temperature from about -20°C to about -70°C.
  • the container comprising the frozen virus composition is stored at about -20°C to about -70°C. Thawing the virus composition at room temperature brings the virus compositions back to the liquid state, wherein the thawed liquid virus composition has less than about a 0.5 log PFU loss after 6 months storage.
  • the thawed liquid virus composition is at least 4.0 log PFU/0.2 mL. In another embodiment, the thawed liquid virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -20°C.
  • the thawed liquid virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -70°C.
  • a suitable container means with respect to a liquid virus composition, is a container which withstands temperatures in the range between about -20°C to about -70°C.
  • a suitable container means for the production of storage stable liquid compositions is a vial, a tube, a syringe or a nasal spray device.
  • the container is a nasal spray device.
  • the nasal spray device is a BD AccusprayTM nasal spray device, available from BD Pharmaceutical Systems (Franklin Lakes, NJ) or a similar nasal spray device.
  • the rate at which the liquid virus composition freezes is critical for virus storage stability (e.g., see Example 5).
  • a liquid nitrogen bath is used to rapidly freeze the virus composition.
  • the metal plate in step (a) is any metal which adequately transfers heat to the liquid nitrogen bath and away from the metal container holder of step (c).
  • the metal container holder in step (c) is any metal which transfers heat to the metal plate and away from the container comprising the virus.
  • the metal container holder is aluminum.
  • the metal container holder is stainless steel.
  • a liquid virus composition is formulated with a pharmaceutically acceptable carrier which includes buffers, saline solutions, water, water for injection (WFI), sugars, amino acids, cryoprotectants, and the like.
  • the liquid virus compositions set forth supra are formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES.
  • the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
  • the liquid virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8.
  • the 10 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES.
  • the 10 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride.
  • the 5.0 mM to about 20 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid or L(+)-glutamic acid monosodium salt or a mixture thereof, and human albumin (HA).
  • the 5.0 mM to about 20 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof.
  • the 10 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof.
  • the liquid frozen virus composition (i.e., frozen in a spray device or vial) has less than about a 0.5 log PFU loss after "fast" freezing, and less than about a 0.5 log PFU loss after 6 months of storage at about -20°C to about -70°C (e.g., see Example 5 and Tables 9-12).
  • the liquid frozen virus composition is at least 4.0 log PFU per 0.2 mL after 6 months of storage at about -20°C to about - 70°C.
  • the invention provides immunogenic compositions comprising a storage stable (frozen) liquid virus compositions comprising RSV, PIV, or a combination thereof, produced according the methods of the invention.
  • the invention provides immunogenic compositions comprising a storage stable (frozen) liquid virus compositions comprising herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus, Venezuelan equine encephalitis virus and
  • the frozen liquid immunogenic compositions are comprised in a nasal spray device.
  • a storage stable (frozen) liquid virus composition of the invention is formulated and processed for administration to a mammalian subject using a liquid formulation and process of the invention (e.g., see Section D, Example 1 and Example 5), stored as a frozen liquid and thawed prior to administration to said mammalian subject.
  • a storage stable virus composition of the invention is a lyophilized solid (or lyophilized cake) composition.
  • a storage stable lyophilized virus composition is dissolved, diluted or suspended in a pharmaceutically acceptable carrier and provided as an immunogenic composition suitable for administration to a mammalian subject (e.g., a human).
  • a pharmaceutically acceptable carrier typically comprise the "immunogenic" composition (e.g., an attenuated RSV and/or attenuated PIV virus) and a "pharmaceutically acceptable carrier".
  • pharmaceutically acceptable carrier is intended to include any and all solvents known in the art to be compatible with pharmaceutical administration. The use of such media and agents for pharmaceutically active substances is well known in the art.
  • an immunogenic composition of the invention is formulated to be compatible with its intended route of administration.
  • routes of administration include parenteral (e.g., intravenous, intradermal, subcutaneous, intramuscular, intraperitoneal), mucosal (e.g., oral, rectal, intranasal, buccal, vaginal, respiratory) and transdermal (topical).
  • a storage stable lyophilized virus immunogenic composition to be administered as an intranasal spray includes one or more of the following components: a sterile diluent such as water for injection, a saline solution, a buffers (e.g., acetates, citrates or phosphates) and agents for the adjustment of tonicity such as sodium chloride or dextrose.
  • a buffers e.g., acetates, citrates or phosphates
  • agents for the adjustment of tonicity such as sodium chloride or dextrose.
  • the pH is adjusted with acids or bases, such as hydrochloric acid or sodium hydroxide.
  • the immunogenic composition is enclosed in a spray device, an ampoule, a disposable syringe or a single/multiple dose vial made of glass or plastic. It is especially advantageous to formulate parenteral compositions in dosage unit form for ease of administration and uniformity of dosage.
  • Dosage unit form refers to physically discrete units suited as unitary dosages for the subject to be treated; each unit containing a predetermined quantity of active compound calculated to produce the desired therapeutic effect in association with the required pharmaceutical carrier.
  • the specification for the dosage unit forms of the invention are dictated by and directly dependent on the unique characteristics of the active compound and the particular therapeutic effect to be achieved, and the limitations inherent in the art of compounding such an active compound for the treatment of individuals.
  • a pharmaceutically acceptable vehicle is understood to designate a compound or a combination of compounds entering into a pharmaceutical or immunogenic composition which does not cause side effects and which makes it possible, for example, to facilitate the administration of the active compound, to increase its life and/or its efficacy in the body, to increase its solubility in solution or alternatively to enhance its preservation.
  • These pharmaceutically acceptable vehicles are well known and will be adapted by persons skilled in the art according to the nature and the mode of administration of the active compound chosen. All patents and publications cited herein are hereby incorporated by reference.
  • RSV AND PIV FORMULATION COMPONENTS The RSV and/or PIV samples described herein were formulated in one of the following phosphate buffered recipes, designated as "Formulation A1" through “Formulation E2", as follows: Formulation A1: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L HA.
  • HA is Grifols® 20% (w/v) Human Albumin (Grifols USA, Los Angeles, CA; Catalogue No. 61953-0001-1).
  • Formulation A2 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L HA.
  • Formulation A3 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM
  • Recombinant HA is
  • Recombumin ® (Delta Biotechnology Ltd., Nottingham, United Kingdom)
  • Formulation A4 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L recombinant HA.
  • Formulation B1 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L HA.
  • Formulation B2 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L HA.
  • Formulation B3 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L recombinant HA.
  • Formulation B4 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM
  • HEPES 0.5 mM magnesium chloride, 0.1 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L recombinant HA.
  • Formulation C1 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone (Hy Soy®) and 1.0 g/L HA.
  • Formulation C2 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone and about 1.0 g/L recombinant HA.
  • Formulation C3 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM
  • HEPES 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone and about 1.0 g/L recombinant HA.
  • Formulation C4 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.1 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone and about 1.0 g/L HA.
  • Formulation D1 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 50 g/L soy peptone.
  • Formulation D2 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM
  • HEPES 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 50 g/L soy peptone.
  • EXAMPLE 2 EFFECT OF FREEZING RATES ON POTENCIES OF SMALL VOLUME RSV AND/OR PIV FORMULATIONS DURING LYOPHILIZATION
  • the freezing rates of small volume RSV and/or PIV formulations were studied to determine the optimal freezing conditions needed minimize virus potency loss. Initially, three samples were tested containing LRSV-404, PIV3-cp45 and a combination of LRSV-404/PIV3-cp45 (Table 2).
  • the viral bulks used in these formulations were prepared as clinical materials for Phase 1 and Phase 2 human clinical trials.
  • Each virus sample was formulated using "Formulation A1", as set forth in Example 1.
  • the samples were filled in 2 mL vials (0.6 mL per vial), pre-cooled to a temperature of about 5°C and then placed on a pre-cooled (-50°C) shelf of the lyophilizer.
  • the glass transition temperature (T g ) of the virus composition (about -35°C ⁇ 5°C) was reached in approximately forty minutes, corresponding to a freezing rate of about -1.0°C per minute. After freezing, a lyophilization cycle was applied that included primary drying at 0°C, followed by secondary drying at 15°C.
  • Virus potency testing was performed for initial virus bulks, the virus material in vials after the freezing step and the lyophilized samples (immediately after lyophilization).
  • RSV was tested using the Plaque Form Unit (PFU) Assay and Vero cells (ATCC Catalogue No. CCL-18).
  • the assay included (a) the preparation of cell monolayers in 24-well plates, (b) the preparation of 10-fold dilutions of reference and test samples, (c) infection of the cells, (d) incubation of plates for about 5 days at 32°C and 5% CO 2 and (e) fixation of cells and immunostaining to visualize the plaques.
  • PIV was tested using the Plaque Form Unit (PFU) Assay and LCC-MK2 cells that included (a) the preparation of cell monolayers in 24-well plates, (b) the preparation of 10-fold dilutions of reference and test samples, (c) infection of the cells, (d) incubation of plates for about 4 days at 32°C and 5% CO 2 and (e) fixation of cells and immunostaining to visualize plaques.
  • PFU Plaque Form Unit
  • LCC-MK2 cells included (a) the preparation of cell monolayers in 24-well plates, (b) the preparation of 10-fold dilutions of reference and test samples, (c) infection of the cells, (d) incubation of plates for about 4 days at 32°C and 5% CO 2 and (e) fixation of cells and immunostaining to visualize plaques.
  • PFU Plaque Form Unit
  • the data indicate minimal potency loss for formulations frozen at a rate of about -1.0°C per minute.
  • the results of this experiment also confirmed that RSV and PIV are compatible in a combined formulation.
  • RSV and/or PIV stability was further tested at faster (-2°C/minute; Table 6) and slower (-0.3°C/minutes; Table 3) freezing rates and with varying concentrations of recombinant HA (rHA), HA, soy peptone and combinations thereof.
  • the virus samples comprised LRSV-404, LRSV-rA38, LRSV-rA42 or PIV3-cp45 liquid viral bulks prepared for Phase 1 and Phase 2 human clinical trials. Each virus sample was formulated using the formulation as indicated in the second column of Tables 3- 6.
  • the virus samples were filled in a 2 mL vial (0.5 mL per a vial), pre-cooled to a temperature of about 5°C and then placed on a shelf of the lyophilizer.
  • the frozen samples were lyophilized using cycles that included primary drying at 0°C followed by secondary drying at 15°C. Potency testing was performed for initial viral bulks, materials in vials after freezing and lyophilized samples (immediately after lyophilization).
  • the potency testing results indicated a significant reduction of RSV or PIV potencies in samples frozen at about -0.3°C per minute (Table 3) and a high stability of RSV or PIV in formulations frozen at faster rates of -1 °C per minute (Table 4 and Table 5) and -2°C per minute (Table 6).
  • Formulation 1 Formulations A1-A4, B1 , B2, C3 and D2 are described in Example 1.
  • EXAMPLE 3 STORAGE STABILITY OF SMALL VOLUME FORMULATIONS COMPRISING RSV OR PIV Storage stability of formulations described in Example 2 were evaluated by potency testing at different time points that included 3-month, 6-month, 9-month and 12-month storage at 5°C. Stability data are summarized in Table 7 below, wherein the data demonstrate minimum potency losses of the virus compositions up to one- year of storage at 5°C.
  • the Formulation column in Table 7 represents the formulations designated in Example 1.
  • the bulk RSV-404 formulation comprising 10 mM phosphate buffer pH 7.0 (2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid monosodium salt, 50 g/L sucrose and 1 g/L of HA) was prepared and lyophilized in a 1-L Lyoguard ® lyophilization tray. Freezing of the material was performed on the shelf of a lyophilizer by reducing shelf temperature from 5°C to - 45°C in 45 minutes. The lyophilization tray remained on the shelf (at -45°C) for an additional 5 hours to allow the formulation to freeze below glass transition temperature.
  • the actual time to reach the glass transition temperature (about -35°C) was about 2 hours, which corresponded to a freezing rate of about -0.3°C per minute.
  • a 90 hour lyophilization cycle was applied, that included primary drying at 0°C followed by secondary drying at 15°C.
  • the initial formulated bulk and the lyophilized material were tested for potency by PFU Assay.
  • formulation with LRSV-rA39 was prepared using the same formulation, but the material was lyophilized using small size aluminum trays with 50-mL capacity. The material was frozen on a shelf of lyophilizer by reducing temperature from 5°C to -40°C in 60 minutes.
  • the actual time to reach the glass transition temperature of the material (about -35°C) was about 1.5 hours, which corresponded to a freezing rate of about -0.4°C per minute. Subsequently, a 24 hour lyophilization cycle was applied that included primary drying at 0°C followed by secondary drying at 15°C.
  • the initial formulated bulk and the lyophilized material were tested for potency by PFU Assay.
  • two other RSV formulations were prepared using bulk lyophilization in 1-L Lyoguard ® lyophilization trays.
  • the LRSV-rA38 and LRSV-404 (grown in serum free medium) were formulated separately with 10 mM phosphate (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 10g/L of HA.
  • the virus compositions were frozen by sinking the trays into a liquid nitrogen bath for at least 20 minutes.
  • the lyophilization trays were then placed on a pre-cooled (-50°C) lyophilization shelf and lyophilized using a 120 hour cycle that included (a) initiation of primary drying with vacuum set to 0.10 Torr; (b) a temperature ramp (at 0.23°C/minute) to a shelf temperature of -23°C; (c) holding the temperature at -23°C for 80-100 hours; (d) initiation of secondary drying with vacuum set at 0.02 Torr; (e) a temperature ramp (at 0.13°C/minute) to a shelf temperature of 15°C; (f) holding the temperature at 15°C for 30-40 hours; (g) ramping the temperature (at 0.17°C/minute) to a shelf temperature of 25°C and (h) holding the temperature at 25°C for 10 hours.
  • EXAMPLE 5 FAST FREEZING OF LIQUID RSV FORMULATIONS FILLED IN NASAL SPRAY DEVICES
  • a liquid formulation of LRSV-rA38 (grown in serum free medium) was prepared in a 10 mM phosphate buffer solution (pH 7.5) comprising 25 mM HEPES, 1.0 mM magnesium chloride, 1.0 mM calcium chloride, 75 g/L sucrose and 4.9 mM L(+)-glutamic acid.
  • the formulation was filled into BD AccusprayTM nasal spray devices (0.23 mL per a device) and each nasal spray device was inserted into a well of an aluminum nasal spray holder (e.g., see FIG. 1) designed and manufactured by Applicant.
  • the nasal spray holder was made from an aluminum block having 96 wells, wherein the well diameter is 0.5 mm greater than the diameter of the nasal spray device.
  • the wells are deep enough to allow the virus sample within each nasal spray device to be below top surface of the holder (FIG. 1).
  • a stainless steel plate (with dimensions 0.3 m x 0.2 m x 0.02 m) was placed into a cryocontainer filled with liquid nitrogen and the plate was equilibrated in the liquid nitrogen (i.e., until the liquid nitrogen stopped boiling). After equilibration, the volume of the liquid nitrogen in the cryocontainer was adjusted such that there was enough volume to touch the metal plate, but not touch the nasal spray holder.
  • the nasal spray holder containing the filled nasal spray devices, was placed on top of the "frozen” plate inside the cryocontainer and allowed to "fast freeze” for at least ten minutes.
  • the nasal spray devices were subsequently removed from the nasal spray holder, wherein half of the nasal spray devices were stored in a freezer that was set at -70°C and other half of the nasal spray devices were stored in a freezer that was set at -20°C.
  • a liquid formulation of LRSV-404 (grown in serum free medium) was also prepared in a 10 mM phosphate buffer solution (pH 7.5) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 75 g/L sucrose and 4.9 mM L(+)-glutamic acid.
  • the formulation was filled into BD AccusprayTM nasal spray devices (0.23 mL per a device), "fast" frozen and stored as described above.
  • liquid LRSV-rA38 and liquid LRSV-404 samples were formulated and filled into the nasal spray devices as described above, but the freezing was performed by placing the nasal spray holders on a shelf of a regular freezer cooled at -70°C and allowed to freeze for 24 hours ("slow" freezing).
  • the data in FIG. 2 show the kinetics of "fast" freezing (FIG. 2, filled squares) and "slow” freezing (FIG. 2, open squares). Subsequently, half of the nasal spray devices were stored in a freezer that was set at -70°C and other half of the nasal spray devices were stored in a freezer set at -20°C.
  • the potency of the liquid LRSV-404 formulation before freezing at -70°C was 6.2 (log PFU/mL). It was observed from these data, that the RSV formulations frozen with the liquid nitrogen ("fast” freezing) were stable at both storage temperatures (-20°C and -70°C) (Table 9 and Table 11). The RSV formulations frozen on the shelf of the freezer at -70°C (“slow” freezing) showed decreases in potencies and high variability of potency at different time points (Table 10 and Table 12). The influence of the freezing on spray performance was evaluated by measurement of Droplet Size Distribution using a Malvern SprayTec Particle Sizer. The analysis was performed for spray devices filled with the liquid LRSV-rA38 formulation described above.
  • Droplet Size Distribution was measured for spray devices (ten devices per test) as follows: (a) nasal spray device filled with RSV, but not frozen, (b) nasal spray device filled with RSV, frozen in liquid nitrogen and stored for 3 month at -70°C, (c) nasal spray device filled with RSV, frozen in liquid nitrogen and stored for 3 month at -20°C, (d) nasal spray device filled with RSV, frozen in a -70°C freezer and stored for 3 month at -70°C, and (e) nasal spray device filled with RSV, frozen in a -70°C freezer and stored for 3 month at -20°C.
  • McConnochie et al. "Variation in severity of respiratory syncytial virus infections with subtype", J. Pediatr. 117:52-62, 1990. Mclntosh and Chanock, Fields Virology (Fields and Knipe, Eds.) 1045-1075, Raven Press, Ltd., New York, 1990. Melnick and Wallis, Proc. Soc. Exp. Biol. Med., 112:894-897, 1963. Rasmussen et al., Am. J. Dis. Child, 126:465-469, 1973.

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Abstract

The invention relates to methods for producing storage stable virus compositions. In certain embodiments, the invention relates to one or more formulations and process steps which result in storage stable virus compositions, wherein the composition is storage stable as a lyophilized solid composition or a frozen liquid composition.

Description

METHODS FOR PRODUCING STORAGE STABLE VIRUSES AND IMMUNOGENIC COMPOSITIONS THEREOF
FIELD OF THE INVENTION The present invention generally relates to the fields of virology, viral formulation and process development. More particularly, the invention relates to methods for producing storage stable virus compositions, wherein the compositions are storage stable as a lyophilized solid composition or a frozen liquid composition. BACKGROUND OF THE INVENTION Human respiratory syncytial virus (RSV) and parainfluenza virus (PIV), members of the paramyxovirus family, are major pathogens responsible for severe respiratory disease in infants and young children (Glezen et. al., 1981; Chanock et al., 1992; Martin et al., 1978). Two groups of RSV, group A (RSV-A) and group B (RSV- B), circulate simultaneously during yearly winter epidemics, although a predominance of Group A infections is usually noted (McConnochie et al., 1990; Stark et al., 1991 ). PIV type 3 (PIV-3) is a common cause of bronchiolitis, pneumonia and croup. Together, RSV and PIV-3 account for up to 30% of all hospitalizations of infants and young children for respiratory tract disease (Crowe, 1995). PIV types 1 and 2 (PIV-1 and PIV-2) are also common causes of croup. RSV has also been reported to cause significant morbidity in immunocompromised individuals and the elderly. Sixty-five million RSV infections occur globally every year, resulting in 160,000 deaths (Robbins and Freeman, 1988). In the United States alone, 100,000 children are hospitalized annually with severe cases of pneumonia and bronchiolitis resulting from an RSV infection (Glezen et al., 1986; Katz, 1985). Inpatient and ambulatory care for children with RSV infections in the U.S. was estimated in 1992 to cost in excess of $340 million per year (Wertz and Sullender, 1992). The World Health Organization (WHO) (Crowe, 1995) and the National Institute of Allergy and Infectious Disease (NIAID) vaccine advisory committees have ranked RSV second only to HIV for vaccine development, while the preparation of an efficacious PIV (e.g., PIV type 3) vaccine is ranked in the top ten vaccines considered a priority for vaccine development. Thus, an urgent need remains for the ability to engineer a safe and effective RSV and/or PIV vaccine that is able to prevent serious respiratory diseases in infants, young children, elderly and the immunocompromised. The use of live attenuated RSV and/or PIV to control respiratory disease is one of the more promising approaches. A number of live attenuated RSV strains have been developed and tested in RSV-seronegative children during the past twenty years. The most pursued approaches for live attenuation of RSV have been cold-passaged (cp) RSV, temperature-sensitive (ts) RSV mutants and cold-passage temperature sensitive (cpts) RSV mutants (Kneyber and Kimpen, 2002). RSV mutants such as cpts-248, cpts-248/404, cpts-530 and PIV-3 mutant cp-45 are currently being evaluated in laboratories and clinical trials. In addition to a need for the identification and development of an efficacious live attenuated RSV, PIV or RSV/PIV combination immunogenic compositions, there is currently a need for methods of producing storage stable RSV and/or PIV compositions and immunogenic compositions thereof. For example, RSV is a heat labile virus, which is inactivated in less than three months during storage at -65°C to -86°C (Hambling, 1964; Wulff et al., 1964; Gupta et al., 1996). It is therefore highly desirable to identify methods for producing RSV, PIV or RSV/PIV immunogenic compositions which are storage stable. Furthermore, enhancing the storage stability of other viral immunogenic compositions has long been recognized as an important goal for improving the impact of vaccines on world health (Melnick and Wallis, 1963; Rasmussen et al., 1973; Ayra, 2001 ; Hilleman, 1989; Lemon and Milstein, 1994). There is therefore a need in the art of virus formulation and process development for methods of producing storage stable virus compositions such as herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus, Venezuelan equine encephalitis virus and the like. SUMMARY OF THE INVENTION The present invention broadly relates to processes for producing storage stable virus compositions and immunogenic compositions thereof. In certain embodiments, the invention is directed to processes for producing storage stable virus compositions comprising a respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof. More particularly, in certain embodiments, the invention relates to one or more formulations and process steps which result in storage stable virus compositions, wherein the virus composition is storage stable as a lyophilized solid composition or a frozen liquid composition. In one particular embodiment, the invention relates to one or more formulations and process steps which result in storage stable RSV, PIV or RSV/PIV compositions, wherein the RSV, PIV or RSV/PIV composition is storage stable as a lyophilized solid composition or a frozen liquid composition. Thus, in certain embodiments, the invention is directed to a process for producing a small volume storage stable virus composition. In one particular embodiment, the invention is directed to a process for producing a small volume storage stable virus composition comprising RSV, a PIV, or a combination thereof, the process comprising (a) freezing the virus composition below its glass transition temperature in a time of about sixty minutes or less and (b) lyophilizing the virus composition, wherein the lyophilized virus composition is stable for at least one year at a storage temperature of about 1°C to about 10°C. In one embodiment, the glass transition temperature is a temperature of about -45°C and is reached in a time of about sixty minutes or less. In another embodiment, the glass transition temperature is a temperature of about -35°C and is reached in a time of about forty minutes or less. In still another embodiment, the glass transition temperature of about -35°C is reached in a time of about twenty minutes or less. In one embodiment, the volume of the virus composition is about 0.2 mL to about 1.0 rriL. In certain embodiments, the virus composition is comprised in a suitable container means, wherein the container means is further defined as a vial, a tube or a nasal spray device. In one embodiment, the RSV is further defined as group A RSV (RSV-A), group B RSV (RSV-B), or a chimeric recombinant RSV comprising one or more antigens of each of group A and B (RSV-AB), and the PIV is further defined as PIV type 1 (PIV-1), PIV type 2 (PIV-2) or PIV type 3 (PIV-3). In certain embodiments, a small volume storage stable virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM N-2-hydroxyethylpiperazine-N'-2- ethanesulfonic acid (HEPES). In certain other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In certain embodiments, a small volume storage stable virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 10 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In certain other embodiments, the 10 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution
(pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid, L(+)-glutamic acid monosodium salt, a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt, human albumin (HA) and/or soy peptone. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA. In another embodiment, the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone. In still other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprises about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, about 0.01 mM to about 1 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone. In one embodiment, the 10 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 12.5 mM HEPES, about 0.01 mM to about 0.5 mM magnesium chloride and about 0.01 mM to about 0.5 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA. In other embodiments, the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone. In yet other embodiments, the 10 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprises about 0.25 mM to about 12.5 mM HEPES, about 0.01 mM to about 0.5 mM magnesium chloride, about 0.01 mM to about 0.5 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone. In one embodiment, the storage temperature of the small volume storage stable virus composition is about 5°C. In certain other embodiments, the virus composition has less than about a 1.0 log PFU loss after one year of storage at about 1°C to about 10°C. In yet another embodiment, the virus composition is at least 4.0 log PFU per 0.2 mL after one year of storage at about 1 °C to about 10°C. In one embodiment, lyophilizing the virus composition is further defined as (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) placing the vial on a lyophilization shelf and decreasing the shelf temperature from 5°C to -50°C at a rate of about -1.0°C per minute to about -2.0°C per minute; (c) holding the shelf temperature at about -50°C for 60 minutes; (d) reducing the lyophilization chamber pressure to 0.10 Torr and holding the shelf temperature at about -50°C for 30-60 minutes; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes and (g) filling the vial with nitrogen gas and hermetically sealing the vial. In another embodiment, lyophilizing the virus composition is further defined as (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) freezing a lyophilization shelf to a temperature of about -70°C; (c) placing the vial on the lyophilization shelf and holding the temperature at about -70°C for about 60 minutes; (d) reducing the lyophilization chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -50°C at a rate of about 1.0°C per minute; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C per minute at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes and (g) filling the vial with nitrogen gas and hermetically sealing the vial. In yet another embodiment, the invention is directed to a process for producing a bulk (or large) volume, lyophilization stable virus composition. In one particular embodiment, the invention is directed to a process for producing a bulk (or large) volume, lyophilization stable virus composition comprising RSV, PIV, or a combination thereof, the process comprising (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; (b) freezing the virus composition in a liquid nitrogen bath for at least twenty minutes and (c) lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization. In still other embodiments, the bulk volume virus composition is at least 5.0 log PFU per dose after lyophilization. In one embodiment, the glass transition temperature is a temperature of about -35°C. In another embodiment, the glass transition temperature is a temperature of about -30°C to about -40°C. In still another embodiment, the lyophilization tray is a Lyoguard® lyophilization tray (W. L. Gore and Associates; Newark, DE). In one embodiment, the bulk volume of the virus composition is at least 500 mL per lyophilization tray. In other embodiments, the bulk volume of the virus composition is at least 1000 mL per lyophilization tray. In one embodiment, the RSV is further defined as RSV-A, RSV-B, or a chimeric recombinant RSV comprising one or more antigens of each of group A and B (RSV- AB), and the PIV is further defined as PIV-1 , PIV-2 or PIV-3. In one embodiment, the bulk volume virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 2.5 mM to about 25 mM HEPES. In certain other embodiments, the
5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride. In certain embodiments, the bulk volume virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 10 mM phosphate buffer solution further comprises about 2.5 mM to about 25 mM HEPES. In certain other embodiments, the 10 mM phosphate buffer solution further comprises about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid, L(+)- glutamic acid monosodium salt, a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt, human albumin (HA) and/or soy peptone. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA. In one embodiment, the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprises about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride, about 0.1 mM to about 1 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone. In still other embodiments, the 10 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 2.5 mM to about 12.5 mM HEPES, about 0.1 mM to about 0.5 mM magnesium chloride and about 0.1 mM to about 0.5 mM calcium chloride, further comprises about 50 g/L sucrose, about 0.049 mM to 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA. In yet other embodiments, the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone. In yet another embodiments, the 10 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprises about 2.5 mM to about 12.5 mM HEPES, about 0.1 mM to about 0.5 mM magnesium chloride, about 0.1 mM to about 0.5 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone. In certain other embodiments, lyophilizing the bulk volume virus composition is further defined as (a) placing the lyophilization tray comprising the frozen virus composition at a temperature of about -50°C on a lyophilization shelf pre-cooled to a temperature of about -50°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -50°C to -23°C at a rate of about 0.23°C per minute at about 0.10 Torr; (c) holding the shelf temperature at about -23°C for about 80 hours to about 100 hours; (d) reducing the lyophilization chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the shelf temperature at about 15°C and at about 0.02 Torr for about 30 hours to about 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding the shelf temperature at about 25°C and at about 0.02 Torr for about 10 hours and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch. In other embodiments, lyophilizing the bulk volume virus composition is further defined as (a) placing the tray comprising the frozen virus composition at a temperature of about -70°C on a lyophilization shelf pre-cooled to a temperature of about -70°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -23°C at a rate of about 0.23°C per minute; (c) holding the shelf temperature at about -23°C at about 0.10 Torr for about 80 to 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the temperature at about 15°C and 0.02 Torr for about 30 to 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.020 Torr; (g) holding the temperature at about 25°C for about 10 hours and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch. In other embodiments, the invention is directed to a process for producing a storage stable frozen liquid virus composition. In one particular embodiment, the invention is directed to a process for producing a storage stable frozen liquid virus composition comprising RSV, PIV, or a combination thereof, the process comprising (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a suitable container means; (c) inserting the container of step (b) into a metal holder; (d) placing the metal holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the container from the metal holder and (f) storing the container at temperature from about -20°C to about -70°C, wherein the virus composition after steps (a) through (f) has less than about a 0.5 log PFU loss after 6 months storage. In certain embodiments, the container means is a nasal spray device. In one embodiment, the nasal spray device is a BD Accuspray™ nasal spray device (BD Medical Pharmaceutical Systems; Franklin Lakes, NJ). In another embodiment, the metal holder is aluminum. In still another embodiment, the metal holder is stainless steel. In other embodiments, the virus composition is at least 4.0 log PFU/0.2 mL after steps (a) through (f). In yet another embodiment, the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -20°C. In other embodiments, the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -70°C. In certain embodiments, the liquid virus composition is formulated in the absence of a protein stabilizer. In one embodiment, the RSV is further defined as RSV-A, RSV-B, or a chimeric recombinant RSV comprising one or more antigens of each of group A and B (RSV- AB), and the PIV is further defined as PIV-1 , PIV-2 or PIV-3. In certain other embodiments, the liquid virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In certain other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In certain embodiments, the liquid virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 10 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In certain other embodiments, the 10 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises sucrose and L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture thereof. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or about a 4.9 mM mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt. In still other embodiments, the 10 mM phosphate buffer solution, with a pH of about 6.5 to about 7.8, comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or about a 4.9 mM mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt. In another embodiment, the invention is directed to a small volume lyophilized virus composition produced according to the process of freezing a virus composition below its glass transition temperature in a time of sixty minutes or less and lyophilizing the virus composition, wherein the lyophilized virus composition is a stable for at least one year at a storage temperature of about 1°C to about 10°C. In yet another embodiment, the invention is directed to a bulk volume lyophilized virus composition produced according to the process of placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; freezing the virus composition below its glass transition temperature for at least about twenty minutes in a liquid nitrogen bath and lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization. In still another embodiment, the invention is directed to a storage stable frozen liquid virus composition produced according to the process of (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a suitable container means; (c) inserting the container of step (b) into a metal holder; (d) placing the metal holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the container from the metal holder and (f) storing the container at temperature from about -20°C to about -70°C, wherein the virus composition after steps (a) through (f) has less than about a 0.5 log PFU loss after 6 months storage. In certain other embodiments, the invention is directed to an immunogenic composition comprising a virus composition produced according to a lyophilization process of the invention, wherein the virus is dissolved, diluted or suspended in a pharmaceutically acceptable carrier. In other embodiments, the invention is directed to an immunogenic composition comprising a frozen liquid virus composition produced according to a process of the invention. Other features and advantages of the invention will be apparent from the following detailed description, from the preferred embodiments thereof, and from the claims.
BRIEF DESCRIPTION OF THE FIGURES Figure 1 shows a schematic representation of the positioning of the BD Accuspray™ devices in the 96 well aluminum holder that was used to freeze formulations, which is labeled as follows: (1 ) an aluminum or steel holder, (2) formulation filled into the device, (3) BD Accuspray device, (4) stoppers and (5) empty wells. Figure 2 shows the kinetics of freezing a formulation in a -70°C freezer versus freezing the same formulation with liquid nitrogen. The liquid formulation was added to a BD Accuspray™ device and freezing was performed by placing the aluminum holder on a metal surface cooled by liquid nitrogen or by placing the aluminum holder on a shelf of a -70°C freezer. DETAILED DESCRIPTION OF THE INVENTION The invention described hereinafter, addresses a need in the art for methods of producing storage stable virus compositions. In certain embodiments, invention described hereinafter, addresses a need in the art for methods of producing storage stable virus compositions comprising respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof, for use in immunogenic compositions which prevent or ameliorate respiratory disease in infants, young children, the elderly and immunocompromised. In certain other embodiments, the invention addresses a need in the art for methods of producing storage stable virus compositions comprising one or more viruses such as herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella- Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus, Venezuelan equine encephalitis virus and the like, for use in immunogenic compositions which prevent or ameliorate disease caused by one or more of these viruses. Thus, in certain embodiments, the invention is directed to methods for producing small volumes of lyophilized virus compositions. In one particular embodiment, the invention is directed to methods for producing small volumes of lyophilized virus compositions, wherein the lyophilized composition is storage stable for at least one year at a storage temperature of about 1°C to about 10°C. In certain other embodiments, the invention is directed to methods for producing large (or bulk) volumes of lyophilized virus compositions. In particular embodiments, the invention is directed to methods for producing large (or bulk) volumes of lyophilized virus compositions, wherein the lyophilized composition has less than about a 0.5 log plaque-forming units (PFU) loss relative to the composition before lyophilization. In another embodiment, the invention is directed to methods for producing frozen liquid virus compositions. In certain embodiments, the invention is directed to methods for producing frozen liquid virus compositions, wherein the composition has less than about a 0.5 log PFU loss after six months storage. In other embodiments, the invention provides storage stable virus compositions produced according to the methods of the invention. In other embodiments, the invention provides immunogenic compositions produced according to the methods of the invention.
A. VIRUS COMPOSITIONS RSV belongs to the genus Pneumoviridae, which is classified within the family of Paramyxoviridae. The virion contains a single stranded negative sense RNA of 15,222 base pairs which codes for ten viral proteins. These ten proteins comprise three envelope-associated glycoproteins termed G, F and SH; two matrix proteins M and M2, three nucleocapsid proteins L, N and P and the nonstructural proteins 1 B and 1C. Two groups of RSV, group A and group B, are identified on the basis of antigenic differences in the G protein and to a lesser extent the F protein. Antigenic differences can be found within the two groups. The G protein shows a high degree of variation with only 53% amino acid homology between RSV groups A and B and up to 20% differences in G protein sequences within RSV group A. Hereinafter, "RSV group A" is represented as "RSV-A" and "RSV group B" is represented as "RSV-B". A storage stable RSV composition (or RSV/PIV combination) produced according to one of the methods of the invention is any attenuated RSV (e.g., attenuated RSV-A and attenuated RSV-B) which includes, but is not limited to, cold- passaged RSV mutants (cpRSV), temperature-sensitive RSV mutants (teRSV), cold- passaged temperature-sensitive RSV mutants (cpteRSV), cold-adapted RSV mutants (caRSV), small-plaque RSV mutants (spRSV), and the like. For example, U.S. Patent Nos. 5,882,651 , 5,932,222, 5,993,824, 6,077,514 and 6,284,254, each of which is incorporated herein by reference in its entirety, describe methods for producing various attenuated RSV phenotypes. In a preferred embodiment, an attenuated RSV of the invention is cpteRSV 248/404 (ATCC VR2452), also known as LRSV-404 and all recombinant modifications made from this strain including recombinant RSV-AB strains. Other exemplary RSV strains of the invention include: (a) rA2cp248/404ΔSH (also known as LRSV-rA36); (b) rA2cp248/404/1030ΔSH (also known as LRSV-rA38); (c) rA2cp248/404/1030 (also known as LRSV-rA39); (d) rA2cp248/404ΔNS2 (also known as LRSV-rA41 ); (e) rABcp248/404/1030 (also known as LRSV-rAB1); (f) rABcp248/404ΔSH (also known as LRSV-rAB2); (g) rABcp248/404ΔNS2 (also known as LRSV-rAB4); (h) cpteRSV 530/1009 (ATCC VR2451) and all recombinant modifications made from this strain including recombinant RSV-AB strains such as rA2cp530/1009ΔNS2 (also known as LRSV- rA42); rA2cp530/1009/404 (also known as LRSV-rA43); rABcp530/1009ΔNS2 (also known as LRSV-rAB3) and rABcp530/1009/404 (also known as LRSV-rAB6). Human parainfluenza virus type 3 (PIV-3) is a member of the recently named
Respirovirus genus of the Paramyxoviridae family. Its genome is a single strand of negative-sense RNA 15,462 nucleotides in length. At least eight proteins are encoded by PIV-3: the nucleocapsid protein NP, the phosphoprotein P, the nonstructural protein C, the D protein, the matrix protein M, the fusion glycoprotein F, the hemagglutinin-neuraminidase protein HN, and the large polymerase protein L. The HN and F proteins are envelope-associated, surface glycoproteins, which are the major neutralization and protective antigens. The significant sequence divergence between comparable PIV HN or F proteins among the PIV types (e.g., type 1 , 2 and 3) is thought to be the basis for the type specificity of the protective immunity. Human parainfluenza virus type 1 (PIV-1) is another member of the Respirovirus genus of the Paramyxoviridae. Its genome is a single strand of negative-sense RNA approximately 15,600 nucleotides in length. The order of gene products encoded by PIV-1 includes the nucleocapsid protein NP, the phosphoprotein P (and numerous other gene products encoded by the P open reading frame), the matrix protein M, the fusion glycoprotein F, the hemagglutinin- neuraminidase protein HN, and the large polymerase protein L. Human parainfluenza virus type 2 (PIV-2) is a member of the Rubulavirus genus of the Paramyxoviridae. Its genome is a single strand of negative-sense RNA approximatelyl 5,654 nucleotides in length. The order of gene products encoded by PIV-2 includes the nucleocapsid protein NP, the phosphoprotein P, the V protein, the matrix protein M, the fusion glycoprotein F, the hemagglutinin-neuraminidase protein HN, and the large polymerase protein L. A storage stable PIV composition (or RSV/PIV combination) produced according to one of the methods of the invention is any attenuated PIV, which includes, but is not limited to, cold-passaged PIV mutants (cpPIV), temperature- sensitive PIV mutants (tePIV), cold-passaged temperature-sensitive PIV mutants (cptePIV), cold-adapted PIV mutants (caPIV), small-plaque PIV mutants (spPIV) and the like. In a preferred embodiment, an attenuated PIV of the invention is the cold- passaged PIV-3 mutant of the JS wild-type strain designated cp-45 (or JS cp45). In other preferred embodiments, the PIV-3 cp-45 mutant is further attenuated using the "menu" of attenuating PIV-3 mutations described in U.S. Patent Nos. 6,410,023 and 5,869,036 (each incorporated herein by reference). In other embodiments, a storage stable virus composition produced according to one of the methods of the invention includes, but is not limited to, one or more of the viruses, or vectors thereof, set forth in Table 1. TABLE 1 VIRUS FAMILIES
I. Picornaviridae
Enteroviruses
Poliovirus
Coxsackievirus
Echovirus
Rhinoviruses
Hepatitis A Virus
II. Caliciviridae
Norwalk group of viruses
III. Togaviridae and Flaviviridae
Togaviruses (e.g., Dengue virus)
Alphaviruses
Flaviviruses (e.g., Hepatitis C virus)
Rubella virus
IV. Coronaviridae
Coronaviruses
V. Rhabdoviridae
Rabies virus
VI. Filoviridae
Marburg viruses
Ebola viruses
VII. Paramyxoviridae
Parainfluenza virus
Mumps virus
Measles virus
Respiratory syncytial virus
Metapneumovirus
VIII. Orthomyxoviridae
Orthomyxoviruses (e.g., Influenza virus)
IX. Bunyaviridae
Bunyaviruses
X. Arenaviridae
Arenaviruses TABLE 1 (CONTINUED) Virus Families XI. Reoviridae Reoviruses Rotaviruses Orbiviruses XII. Retroviridae Human T Cell Leukemia Virus type I Human T Cell Leukemia Virus type II Human Immunodeficiency Viruses (e.g., type I and type II Simian Immunodeficiency Virus Lentiviruses XIII. Papoviridae Polyomaviruses Papillomaviruses XIV. Parvoviridae Parvoviruses XV. Herpesviridae Herpes Simplex Viruses Epstein-Barr virus Cytomegalovirus Varicella-Zoster virus Human Herpesvirus-6 human herpesvirus-7 Cercopithecine Herpes Virus 1 (B virus) XVI. Poxviridae Poxviruses XVIII. Hepadnaviridae Hepatitis B virus XIX. Adenoviridae
B. SMALL VOLUMES OF STORAGE STABLE VIRUS In certain embodiments, the invention is directed to a process for producing small volumes of storage stable virus compositions. In one embodiment, the invention is directed to a process for producing small volumes of storage stable virus compositions comprising RSV, PIV, or a combination thereof. The process comprises freezing the virus composition below its glass transition temperature (Tg) in a time of sixty minutes or less and lyophilizing the virus composition. The lyophilized virus composition, which is a solid powder or cake, is stable for at least one year at a storage temperature of about 1 °C to about 10°C. Small volumes of storage stable lyophilized virus compositions are of particular utility as single or multi- dosage immunogenic compositions, wherein the lyophilized powder is stored for a given amount of time. A "small volume" of a virus composition is between about 100 μL to about 5 mL. In certain embodiments, a small volume virus composition is between about 200 μL to about 1 mL. In one embodiment, the volume of a virus composition is 500 μL. Thus in certain embodiments, a small volume virus composition is frozen and lyophilized in a suitable container means. Typically, a suitable container means, with respect to small volume virus compositions, is a container which can withstand the freezing and lyophilization temperatures and vacuum pressures. For example, a suitable container means for the production of small volume storage stable compositions is a vial, a tube, a syringe, a two-stage syringe or a nasal spray device. See for example U.S. Patent Nos. 5,489,266, 5,732,837 and 4,084,330, each of which is hereby incorporated by reference in its entirety. Additional container means for lyophilization are known and readily available to one of skill in the art.
1. SMALL VOLUME VIRUS FORMULATION As defined hereinafter, a "RSV composition", a "PIV composition" or a "RSV/PIV composition" comprises the virus (i.e., RSV, PIV or RSV/PIV), typically about 103 to 107 PFU of attenuated virus per mL and a pharmaceutically acceptable carrier. A pharmaceutically acceptable carrier includes buffers, saline solutions, water, water for injection (WFI), protein stabilizers, sugars, amino acids, cryoprotectants, and the like. A small volume virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In certain formulations, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In certain formulations, a small volume virus composition formulated in a 5.0 mM to about 20 mM phosphate buffer (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, about 0.01 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture thereof, human albumin (HA) and/or soy peptone. In certain other formulations, the 10 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 12.5 mM HEPES, about 0.01 mM to about 0.5 mM magnesium chloride and about 0.01 mM to about 0.5 mM calcium chloride, further comprises about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 50 g/L sucrose and about 1.0 g/L to about 10.0 g/L HA. In other certain formulations, the about 1.0 g/L to 10.0 g/L HA is substituted with about 50 g/L soy peptone (also known as Hy-Soy®; Quest International; Chicago, IL). In another formulation, the stable small volume virus compositions is formulated in the 5.0 mM to about 20 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, about 0.01 mM to about 1 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 4.9 mM L(+)-glutamic acid or about 0.049 mM to about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/L soy peptone. 2. SMALL VOLUME VIRUS FREEZING RATE AND LYOPHILIZATION As stated supra, the process for producing a small volume storage stable virus composition comprises (a) freezing the virus composition below its glass transition temperature (Tg) in a time of sixty minutes or less and (b) lyophilizing the virus composition, wherein the lyophilized virus composition is a stable for at least one year at a storage temperature of about 1 °C to about 10°C. The Tg of a virus composition is typically about -35°C. The Tg of a virus composition is lower than about -35°C (e.g., about -42°C) in the presence of "carry over" salts such as sodium chloride. For example, sodium chloride is a component of the virus growth medium, but is not a component of the small volume formulation. Thus, certain virus formulations will contain residual quantities (i.e., a "carry over") of sodium chloride, and as such the Tg may be lower than about -35°C, but is typically not lower than about -50°C. The term "glass transition temperature" or "Tg" refers to the approximate midpoint of the temperature range over which the transition from a liquid to a glass state occurs. The rate at which the virus composition reaches its Tg is critical for virus stability during lyophilization (e.g., see Example 2) and for long term virus storage stability (e.g., see Example 3). Stated another way, a faster freezing rate results in a more stable virus composition, thereby resulting in a smaller potency loss of the virus composition. The term "freezing rate" refers to the rate at which the virus composition reaches its Tg. The freezing rate can be calculated as an approximate rate of temperature reduction during freezing. For example, if an initial temperature of a virus composition was 5°C and it was frozen to its Tg of -35°C in a time of 40 minutes, the "freezing rate" would be -1°C/minute. At similar conditions the kinetics of freezing can vary among individual containers or, in case of bulk volumes, exhibit deviations at different points. Thus, the freezing rate is an average rate of freezing observed in containers or measured at different locations of the material loaded on a tray. The freezing rate of a small volume virus composition is about -0.5°C/minute to about -2.5°C/minute. In one embodiment, the Tg is reached in a time of sixty minutes or less. In another embodiment, the Tg is reached in a time of forty minutes or less. In still another embodiment, the Tg is reached in a time of twenty minutes or less. The Tg of a virus composition is readily determined by one of skill in the art without undue experimentation, using for example, thermodynamic measurements such as differential scanning calorimetry (DSC) (Hatley, 1992; Franks, 1992; Carpenter, 2002). In one embodiment, a lyophilization vial comprising a small volume virus composition is pre-cooled to a temperature of about 5°C. The vial containing the pre- cooled virus composition is then placed on a lyophilization shelf and frozen to a temperature of at least -50°C, at a rate of about -1°C/minute to about -2°C/minute. In other embodiments, the vial containing pre-cooled virus composition is placed directly on a lyophilization shelf pre-frozen to a temperature of -70°C. Lyophilization (or freeze-d tying) is a dehydration technique in which the sample solution (e.g., a RSV/PIV composition) is frozen and the solvent (e.g., water or buffer) is removed by sublimation by applying high vacuum. The technique of lyophilization is well known to one of skill in the art (Rey and May, 1999). In one embodiment, a lyophilized small volume virus composition is prepared as follows: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) placing the vial on a lyophilization shelf and decreasing the shelf temperature from 5°C to -50°C at a rate of about -1.0°C per minute to about -2.0 °C per minute; (c) holding the shelf temperature at about -50°C for 60 minutes; (d) reducing chamber pressure to 0.10 Torr and holding the shelf temperature at about -50°C for 30-60 minutes; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes and (g) filling the vial with nitrogen gas and hermetically sealing the vial. In another embodiment, lyophilizing the virus composition is prepared as follows: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) freezing a lyophilization shelf to a temperature of about -70°C; (c) placing the vial on the lyophilization shelf and holding the temperature at about -70°C for about 60 minutes; (d) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -50°C at a rate of about 1.0°C per minute; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C per minute at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes and (g) filling the vial with nitrogen gas and hermetically sealing the vial. The lyophilized small volume virus composition (i.e., the lyophilized cake) has less than about a 1.0 log PFU loss resulting from lyophilization and less than about a 1.0 log PFU loss after one year of storage at about 1°C to about 10°C (e.g., see Example 2, Example 3 and Tables 2 and 4-7). In yet another embodiment, the lyophilized small volume virus composition is at least 4.0 log PFU per 0.2 mL after one year of storage at about 1°C to about 10°C.
C. BULK VOLUMES OF LYOPHILIZATION STABLE VIRUS COMPOSITIONS In another embodiment, the invention is directed to a process for producing bulk (or large) volumes of a lyophilization stable virus compositions. In one embodiment, the invention is directed to a process for producing bulk (or large) volumes of a lyophilization stable virus compositions comprising RSV, PIV, or a combination thereof. The process comprises (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray (b) freezing the virus composition below its Tg for at least about twenty minutes in a liquid nitrogen bath and (c) lyophilizing the virus composition. The lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before the lyophilization process. The process for producing bulk volumes of the lyophilization stable virus compositions is of particular utility during the large scale production/manufacture of said virus compositions. As defined hereinafter, a "bulk" volume or a "large" volume of a virus composition is between about 50 mL to about 2 L per lyophilization tray. In certain embodiments, a bulk volume is between about 250 mL to about 1 mL per lyophilization tray. In one particular embodiment, a bulk volume virus composition is 1 L per lyophilization tray.
1. BULK VOLUME VIRUS FORMULATION A bulk volume virus composition is formulated with a pharmaceutically acceptable carrier which includes buffers, saline solutions, water, water for injection (WFI), protein stabilizers, sugars, amino acids, cryoprotectants, and the like. In one embodiment, a bulk volume virus composition is formulated in a phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts. The concentration of the phosphate buffer is about 5.0 mM to about 20 mM, with a pH range of about 6.5 to about 7.8. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 2.5 mM to about 25 mM HEPES. In certain other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.1 mM to about 1 mM magnesium chloride and about 0.1 mM to about 1 mM calcium chloride. In certain embodiments, the bulk volume virus composition is formulated in a 10 mM phosphate buffer (pH of about 6.5 to about 7.8) and further comprises about 2.5 mM to about 12.5 mM HEPES. In certain other embodiments, the. 10 mM phosphate buffer solution further comprises about 0.1 mM to about 0.5 mM magnesium chloride and about 0.1 mM to about 0.5 mM calcium chloride. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution (pH 6.5 to 7.8, 2.5-25 mM HEPES, 0.1-1.0 mM magnesium chloride, 0.1-1.0 mM calcium chloride) further comprises sucrose, L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture thereof, human albumin (HA) and/or soy peptone. In another embodiment, the 10 mM phosphate buffer solution (pH 6.5 to 7.8, 2.5-12.5 mM HEPES, 0.1-0.5 mM magnesium chloride, 0.1-0.5 mM calcium chloride) further comprises about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA. In one embodiment, the about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone. In yet other embodiments, the 10 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprises about 2.5 mM to about 12.5 mM HEPES, about 0.1 mM to about 0.5 mM magnesium chloride, about 0.1 mM to about 0.5 mM calcium chloride, about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10.0 g/L HA and about 50 g/mL soy peptone. 2. BULK VOLUME VIRUS FREEZING RATE AND LYOPHILIZATION The method for producing a bulk volume, lyophilization stable virus composition comprises (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; (b) freezing the virus composition below its Tg for at least about twenty minutes in a liquid nitrogen bath; and (c) lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization. As described in Section B.2, the rate at which the small volume virus composition reaches its Tg is critical for virus storage stability. Similarly, the rate at which the bulk volume virus composition reaches its Tg is critical for virus storage stability. Thus, an important step for preparing bulk volumes of virus is freezing the virus composition below its glass transition temperature for at least about twenty minutes in a liquid nitrogen bath. Another important parameter for achieving bulk volume rapid freezing rates are the heat transfer properties, the composition and the configuration of the lyophilization tray. For example, a lyophilization tray with a large surface area further reduces the amount of time it takes for a bulk volume virus composition to reach its Tg. Lyophilization trays are well known in the art and include stainless steel trays, glass tray, aluminum trays, plastic trays and Lyoguard® trays. In one embodiment, the lyophilization tray is a Lyoguard® lyophilization tray. The tray is especially designed for bulk lyophilization with good heat transfer property. It consists of a micro-porous membrane designed to prevent solid particles from "flashing" out of the tray during lyophilization cycle while flowing good mass transfer of water vapor. The Tg of the virus composition is a temperature of about -35°C. As stated previously, residual quantities (or "carry over") of sodium chloride from virus growth medium can further reduce the Tg, but not below -50°C. In certain other embodiments, lyophilizing the virus composition is further defined as (a) placing the tray comprising the frozen virus composition at a temperature of about -50°C on a lyophilization shelf pre-cooled to a temperature of about -50°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -50°C to -23°C at a rate of about 0.23°C per minute at about 0.10 Torr (c) holding the shelf temperature at about -23°C for about 80 hours to about 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the shelf temperature at about 15°C and at about 0.02 Torr for about 30 hours to about 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding the shelf temperature at about 25°C and at about 0.02 Torr for about 10 hours and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch. In other embodiments, lyophilizing the bulk volume virus composition is further defined as (a) placing the tray comprising the frozen virus composition at a temperature of about -70°C on a lyophilization shelf pre-cooled to a temperature of about -70°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -23°C at a rate of about 0.23°C per minute; (c) holding the shelf temperature at about -23°C at about 0.10 Torr for about 80 to 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the temperature at about 15°C and 0.02 Torr for about 30 to 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.020 Torr; (g) holding the temperature at about 25°C for about 10 hours and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch. The lyophilized bulk volume virus composition (i.e., the lyophilized cake) has less than about a 1.0 log PFU loss resulting from lyophilization, and less than about a 1.0 log PFU loss after one year of storage at about 1°C to about 10°C (e.g., see Example 4).
D. LIQUID VIRUS COMPOSITIONS In another embodiment, the invention is directed to a process for producing storage stable liquid virus compositions. In one embodiment, the invention is directed to a process for producing storage stable liquid virus compositions comprising RSV, PIV, or a combination thereof. The process comprises (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a suitable container means; (c) inserting the container of step (b) into a metal container holder; (d) placing the metal container holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the container from the metal container holder and (f) storing the container at a temperature from about -20°C to about -70°C.
1. LIQUID VIRUS FREEZING AND THAWING As set forth in step (f), the container comprising the frozen virus composition is stored at about -20°C to about -70°C. Thawing the virus composition at room temperature brings the virus compositions back to the liquid state, wherein the thawed liquid virus composition has less than about a 0.5 log PFU loss after 6 months storage. In one embodiment, the thawed liquid virus composition is at least 4.0 log PFU/0.2 mL. In another embodiment, the thawed liquid virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -20°C. In other embodiments, the thawed liquid virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -70°C. Typically, a suitable container means, with respect to a liquid virus composition, is a container which withstands temperatures in the range between about -20°C to about -70°C. For example, a suitable container means for the production of storage stable liquid compositions is a vial, a tube, a syringe or a nasal spray device. In a certain embodiments, the container is a nasal spray device. In one embodiment, the nasal spray device is a BD Accuspray™ nasal spray device, available from BD Pharmaceutical Systems (Franklin Lakes, NJ) or a similar nasal spray device. The rate at which the liquid virus composition freezes is critical for virus storage stability (e.g., see Example 5). A liquid nitrogen bath is used to rapidly freeze the virus composition. The metal plate in step (a) is any metal which adequately transfers heat to the liquid nitrogen bath and away from the metal container holder of step (c). Similarly, the metal container holder in step (c) is any metal which transfers heat to the metal plate and away from the container comprising the virus. In one embodiment, the metal container holder is aluminum. In another embodiment, the metal container holder is stainless steel.
LIQUID VIRUS FORMULATION A liquid virus composition is formulated with a pharmaceutically acceptable carrier which includes buffers, saline solutions, water, water for injection (WFI), sugars, amino acids, cryoprotectants, and the like. The liquid virus compositions set forth supra, are formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride. In certain embodiments, the liquid virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having a pH of about 6.5 to about 7.8. In other embodiments, the 10 mM phosphate buffer solution further comprises about 0.25 mM to about 25 mM HEPES. In certain other embodiments, the 10 mM phosphate buffer solution further comprises about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride. In one embodiment, the 5.0 mM to about 20 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises sucrose, L(+)-glutamic acid or L(+)-glutamic acid monosodium salt or a mixture thereof, and human albumin (HA). In other embodiments, the 5.0 mM to about 20 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof. In still other embodiments, the 10 mM phosphate buffer solution (pH of about 6.5 to about 7.8) comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride and about 0.01 mM to about 1 mM calcium chloride, further comprises about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof. The liquid frozen virus composition (i.e., frozen in a spray device or vial) has less than about a 0.5 log PFU loss after "fast" freezing, and less than about a 0.5 log PFU loss after 6 months of storage at about -20°C to about -70°C (e.g., see Example 5 and Tables 9-12). In yet another embodiment, the liquid frozen virus composition is at least 4.0 log PFU per 0.2 mL after 6 months of storage at about -20°C to about - 70°C.
E. IMMUNOGENIC VIRUS COMPOSITIONS In certain embodiments, the invention provides immunogenic compositions comprising a storage stable (frozen) liquid virus compositions comprising RSV, PIV, or a combination thereof, produced according the methods of the invention. In other embodiments, the invention provides immunogenic compositions comprising a storage stable (frozen) liquid virus compositions comprising herpes simplex virus, cytomegalovirus, Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus, Venezuelan equine encephalitis virus and the like. In certain embodiments, the frozen liquid immunogenic compositions are comprised in a nasal spray device. Typically, a storage stable (frozen) liquid virus composition of the invention is formulated and processed for administration to a mammalian subject using a liquid formulation and process of the invention (e.g., see Section D, Example 1 and Example 5), stored as a frozen liquid and thawed prior to administration to said mammalian subject. In certain embodiments, a storage stable virus composition of the invention is a lyophilized solid (or lyophilized cake) composition. In particular embodiments, a storage stable lyophilized virus composition is dissolved, diluted or suspended in a pharmaceutically acceptable carrier and provided as an immunogenic composition suitable for administration to a mammalian subject (e.g., a human). Thus, such lyophilized compositions typically comprise the "immunogenic" composition (e.g., an attenuated RSV and/or attenuated PIV virus) and a "pharmaceutically acceptable carrier". As used hereinafter, the language "pharmaceutically acceptable carrier" is intended to include any and all solvents known in the art to be compatible with pharmaceutical administration. The use of such media and agents for pharmaceutically active substances is well known in the art. Except insofar as any conventional media or agent is incompatible with the active compound (e.g., RSV or PIV), such media are used in the compositions of the invention. Thus, an immunogenic composition of the invention is formulated to be compatible with its intended route of administration. Examples of routes of administration include parenteral (e.g., intravenous, intradermal, subcutaneous, intramuscular, intraperitoneal), mucosal (e.g., oral, rectal, intranasal, buccal, vaginal, respiratory) and transdermal (topical). For example, a storage stable lyophilized virus immunogenic composition to be administered as an intranasal spray includes one or more of the following components: a sterile diluent such as water for injection, a saline solution, a buffers (e.g., acetates, citrates or phosphates) and agents for the adjustment of tonicity such as sodium chloride or dextrose. The pH is adjusted with acids or bases, such as hydrochloric acid or sodium hydroxide. The immunogenic composition is enclosed in a spray device, an ampoule, a disposable syringe or a single/multiple dose vial made of glass or plastic. It is especially advantageous to formulate parenteral compositions in dosage unit form for ease of administration and uniformity of dosage. Dosage unit form as used hereinafter refers to physically discrete units suited as unitary dosages for the subject to be treated; each unit containing a predetermined quantity of active compound calculated to produce the desired therapeutic effect in association with the required pharmaceutical carrier. The specification for the dosage unit forms of the invention are dictated by and directly dependent on the unique characteristics of the active compound and the particular therapeutic effect to be achieved, and the limitations inherent in the art of compounding such an active compound for the treatment of individuals. A pharmaceutically acceptable vehicle is understood to designate a compound or a combination of compounds entering into a pharmaceutical or immunogenic composition which does not cause side effects and which makes it possible, for example, to facilitate the administration of the active compound, to increase its life and/or its efficacy in the body, to increase its solubility in solution or alternatively to enhance its preservation. These pharmaceutically acceptable vehicles are well known and will be adapted by persons skilled in the art according to the nature and the mode of administration of the active compound chosen. All patents and publications cited herein are hereby incorporated by reference.
F. EXAMPLES The following examples are carried out using standard techniques, which are well known and routine to those of skill in the art, except where otherwise described in detail. The following examples are presented for illustrative purpose, and should not be construed in any way as limiting the scope of this invention.
EXAMPLE 1 RSV AND PIV FORMULATION COMPONENTS The RSV and/or PIV samples described herein were formulated in one of the following phosphate buffered recipes, designated as "Formulation A1" through "Formulation E2", as follows: Formulation A1: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L HA. HA is Grifols® 20% (w/v) Human Albumin (Grifols USA, Los Angeles, CA; Catalogue No. 61953-0001-1). Formulation A2: 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L HA. Formulation A3: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM
L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L recombinant HA. Recombinant HA is
20% (w/v) human albumin expressed in yeast cells and sold under the trade name
Recombumin® (Delta Biotechnology Ltd., Nottingham, United Kingdom) Formulation A4: 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 1.0 g/L recombinant HA. Formulation B1 : 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L HA. Formulation B2: 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L HA. Formulation B3: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L recombinant HA. Formulation B4: 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM
HEPES, 0.5 mM magnesium chloride, 0.1 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 10 g/L recombinant HA. Formulation C1: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone (Hy Soy®) and 1.0 g/L HA. Formulation C2: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone and about 1.0 g/L recombinant HA. Formulation C3: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM
HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone and about 1.0 g/L recombinant HA. Formulation C4: 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.1 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose, 50 g/L soy peptone and about 1.0 g/L HA. Formulation D1: 10 mM phosphate buffer (pH 7.0) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid, 50 g/L sucrose and 50 g/L soy peptone. Formulation D2: 10 mM phosphate buffer (pH 7.0) comprising 12.5 mM
HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 50 g/L soy peptone. EXAMPLE 2 EFFECT OF FREEZING RATES ON POTENCIES OF SMALL VOLUME RSV AND/OR PIV FORMULATIONS DURING LYOPHILIZATION In this example, the freezing rates of small volume RSV and/or PIV formulations were studied to determine the optimal freezing conditions needed minimize virus potency loss. Initially, three samples were tested containing LRSV-404, PIV3-cp45 and a combination of LRSV-404/PIV3-cp45 (Table 2). The viral bulks used in these formulations were prepared as clinical materials for Phase 1 and Phase 2 human clinical trials. Each virus sample was formulated using "Formulation A1", as set forth in Example 1. The samples were filled in 2 mL vials (0.6 mL per vial), pre-cooled to a temperature of about 5°C and then placed on a pre-cooled (-50°C) shelf of the lyophilizer. The glass transition temperature (Tg) of the virus composition (about -35°C ±5°C) was reached in approximately forty minutes, corresponding to a freezing rate of about -1.0°C per minute. After freezing, a lyophilization cycle was applied that included primary drying at 0°C, followed by secondary drying at 15°C.
TABLE 2 POTENCY OF SMALL VOLUME VIRUS FORMULATIONS BEFORE AND AFTER LYOPHILIZATION
(a) * = Samples where frozen at -1 °C/minute (b) LRSV-4041; the potency of LRSV-4041 as determined from a combined LRSV-404/PIV-cp45 formulation. (c) ' PIV-cp451; the potency of PIV-cp451 as determined from a combined LRSV-404/PIV-cp45 formulation.
Virus potency testing was performed for initial virus bulks, the virus material in vials after the freezing step and the lyophilized samples (immediately after lyophilization). RSV was tested using the Plaque Form Unit (PFU) Assay and Vero cells (ATCC Catalogue No. CCL-18). The assay included (a) the preparation of cell monolayers in 24-well plates, (b) the preparation of 10-fold dilutions of reference and test samples, (c) infection of the cells, (d) incubation of plates for about 5 days at 32°C and 5% CO2 and (e) fixation of cells and immunostaining to visualize the plaques. PIV was tested using the Plaque Form Unit (PFU) Assay and LCC-MK2 cells that included (a) the preparation of cell monolayers in 24-well plates, (b) the preparation of 10-fold dilutions of reference and test samples, (c) infection of the cells, (d) incubation of plates for about 4 days at 32°C and 5% CO2 and (e) fixation of cells and immunostaining to visualize plaques. For both assays, the results of potency testing were considered as acceptable, if the potency of reference samples determined from the assay was within +0.5 log PFU of the registered value. Results of potency testing performed for RSV, PIV and RSV/PIV formulations are shown in Table 2. The data indicate minimal potency loss for formulations frozen at a rate of about -1.0°C per minute. The results of this experiment also confirmed that RSV and PIV are compatible in a combined formulation. RSV and/or PIV stability was further tested at faster (-2°C/minute; Table 6) and slower (-0.3°C/minutes; Table 3) freezing rates and with varying concentrations of recombinant HA (rHA), HA, soy peptone and combinations thereof. The virus samples comprised LRSV-404, LRSV-rA38, LRSV-rA42 or PIV3-cp45 liquid viral bulks prepared for Phase 1 and Phase 2 human clinical trials. Each virus sample was formulated using the formulation as indicated in the second column of Tables 3- 6. The virus samples were filled in a 2 mL vial (0.5 mL per a vial), pre-cooled to a temperature of about 5°C and then placed on a shelf of the lyophilizer. The frozen samples were lyophilized using cycles that included primary drying at 0°C followed by secondary drying at 15°C. Potency testing was performed for initial viral bulks, materials in vials after freezing and lyophilized samples (immediately after lyophilization). The potency testing results indicated a significant reduction of RSV or PIV potencies in samples frozen at about -0.3°C per minute (Table 3) and a high stability of RSV or PIV in formulations frozen at faster rates of -1 °C per minute (Table 4 and Table 5) and -2°C per minute (Table 6). TABLE 3 POTENCY OF SMALL VOLUME RSV FORMULATIONS FROZEN AT -0.3°C/MINUTE
Formulation1 = Formulations A1-A4, B1 , B2, C3 and D2 are described in Example 1.
TABLE 4 POTENCY OF SMALL VOLUME PIV FORMULATIONS FROZEN AT -1°C/MINUTE
TABLE 5 POTENCY OF SMALL VOLUME RSV FORMULATIONS FROZEN AT -1°C/MINUTE
TABLE 6 POTENCY OF SMALL VOLUME RSV AND PIV FORMULATIONS FROZEN AT -2°C/MINUTE
EXAMPLE 3 STORAGE STABILITY OF SMALL VOLUME FORMULATIONS COMPRISING RSV OR PIV Storage stability of formulations described in Example 2 were evaluated by potency testing at different time points that included 3-month, 6-month, 9-month and 12-month storage at 5°C. Stability data are summarized in Table 7 below, wherein the data demonstrate minimum potency losses of the virus compositions up to one- year of storage at 5°C. The Formulation column in Table 7 represents the formulations designated in Example 1.
TABLE 7 FORMULATION, FREEZING RATE AND STORAGE STABILITY DATAFOR RSV AND PIV COMPOSITIONS
ω
-vl
Lyo = Abbreviation for Lyophilization mo = Abbreviation for months S = Virus was grown in medium comprised of fetal bovine serum SF = Virus was propagated using "serum free" growth medium
EXAMPLE 4 EFFECT OF FREEZING RATES ON POTENCY OF BULK VOLUME RSV AND/OR PIV FORMULATIONS DURING LYOPHILIZATION To optimize the lyophilization process of large-scale production of immunogenic compositions comprising RSV, a PIV, or a combination thereof, different freezing rates for bulk (large) volume RSV or PIV formulations were tested. The bulk RSV-404 formulation, comprising 10 mM phosphate buffer pH 7.0 (2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 0.49 mM L(+)-glutamic acid monosodium salt, 50 g/L sucrose and 1 g/L of HA) was prepared and lyophilized in a 1-L Lyoguard® lyophilization tray. Freezing of the material was performed on the shelf of a lyophilizer by reducing shelf temperature from 5°C to - 45°C in 45 minutes. The lyophilization tray remained on the shelf (at -45°C) for an additional 5 hours to allow the formulation to freeze below glass transition temperature. The actual time to reach the glass transition temperature (about -35°C) was about 2 hours, which corresponded to a freezing rate of about -0.3°C per minute. Subsequently, a 90 hour lyophilization cycle was applied, that included primary drying at 0°C followed by secondary drying at 15°C. The initial formulated bulk and the lyophilized material were tested for potency by PFU Assay. In another experiment, formulation with LRSV-rA39 was prepared using the same formulation, but the material was lyophilized using small size aluminum trays with 50-mL capacity. The material was frozen on a shelf of lyophilizer by reducing temperature from 5°C to -40°C in 60 minutes. The actual time to reach the glass transition temperature of the material (about -35°C) was about 1.5 hours, which corresponded to a freezing rate of about -0.4°C per minute. Subsequently, a 24 hour lyophilization cycle was applied that included primary drying at 0°C followed by secondary drying at 15°C. The initial formulated bulk and the lyophilized material were tested for potency by PFU Assay. Alternatively, two other RSV formulations were prepared using bulk lyophilization in 1-L Lyoguard® lyophilization trays. The LRSV-rA38 and LRSV-404 (grown in serum free medium) were formulated separately with 10 mM phosphate (pH 7.0) comprising 12.5 mM HEPES, 0.5 mM magnesium chloride, 0.5 mM calcium chloride, 2.45 mM L(+)-glutamic acid, 50 g/L sucrose and 10g/L of HA. The virus compositions were frozen by sinking the trays into a liquid nitrogen bath for at least 20 minutes. The lyophilization trays were then placed on a pre-cooled (-50°C) lyophilization shelf and lyophilized using a 120 hour cycle that included (a) initiation of primary drying with vacuum set to 0.10 Torr; (b) a temperature ramp (at 0.23°C/minute) to a shelf temperature of -23°C; (c) holding the temperature at -23°C for 80-100 hours; (d) initiation of secondary drying with vacuum set at 0.02 Torr; (e) a temperature ramp (at 0.13°C/minute) to a shelf temperature of 15°C; (f) holding the temperature at 15°C for 30-40 hours; (g) ramping the temperature (at 0.17°C/minute) to a shelf temperature of 25°C and (h) holding the temperature at 25°C for 10 hours. Samples of formulated virus bulks and lyophilized materials were tested for potency in PFU Assay. Listed in Table 8 below are data confirming that freezing rates are critical for preservation of virus potency during lyophilization cycles. Freezing of trays on lyophilization shelves ("slow freezing") resulted in significant potency loss in lyophilized materials (Table 8, column 2) relative to freezing the trays with liquid nitrogen ("fast freezing"), in which potency loss was negligible (Table 8, column 3).
TABLE 8 EFFECT OF FREEZING RATE ON RSV POTENCY DURING BULK LYOPHILIZATION ND* = Not determined
EXAMPLE 5 FAST FREEZING OF LIQUID RSV FORMULATIONS FILLED IN NASAL SPRAY DEVICES A liquid formulation of LRSV-rA38 (grown in serum free medium) was prepared in a 10 mM phosphate buffer solution (pH 7.5) comprising 25 mM HEPES, 1.0 mM magnesium chloride, 1.0 mM calcium chloride, 75 g/L sucrose and 4.9 mM L(+)-glutamic acid. The formulation was filled into BD Accuspray™ nasal spray devices (0.23 mL per a device) and each nasal spray device was inserted into a well of an aluminum nasal spray holder (e.g., see FIG. 1) designed and manufactured by Applicant. The nasal spray holder was made from an aluminum block having 96 wells, wherein the well diameter is 0.5 mm greater than the diameter of the nasal spray device. The wells are deep enough to allow the virus sample within each nasal spray device to be below top surface of the holder (FIG. 1). At the time of filling the nasal spray devices, a stainless steel plate (with dimensions 0.3 m x 0.2 m x 0.02 m) was placed into a cryocontainer filled with liquid nitrogen and the plate was equilibrated in the liquid nitrogen (i.e., until the liquid nitrogen stopped boiling). After equilibration, the volume of the liquid nitrogen in the cryocontainer was adjusted such that there was enough volume to touch the metal plate, but not touch the nasal spray holder. The nasal spray holder, containing the filled nasal spray devices, was placed on top of the "frozen" plate inside the cryocontainer and allowed to "fast freeze" for at least ten minutes. The nasal spray devices were subsequently removed from the nasal spray holder, wherein half of the nasal spray devices were stored in a freezer that was set at -70°C and other half of the nasal spray devices were stored in a freezer that was set at -20°C. A liquid formulation of LRSV-404 (grown in serum free medium) was also prepared in a 10 mM phosphate buffer solution (pH 7.5) comprising 2.5 mM HEPES, 0.1 mM magnesium chloride, 0.1 mM calcium chloride, 75 g/L sucrose and 4.9 mM L(+)-glutamic acid. The formulation was filled into BD Accuspray™ nasal spray devices (0.23 mL per a device), "fast" frozen and stored as described above. Alternatively, liquid LRSV-rA38 and liquid LRSV-404 samples were formulated and filled into the nasal spray devices as described above, but the freezing was performed by placing the nasal spray holders on a shelf of a regular freezer cooled at -70°C and allowed to freeze for 24 hours ("slow" freezing). The data in FIG. 2 show the kinetics of "fast" freezing (FIG. 2, filled squares) and "slow" freezing (FIG. 2, open squares). Subsequently, half of the nasal spray devices were stored in a freezer that was set at -70°C and other half of the nasal spray devices were stored in a freezer set at -20°C. Storage stability of the samples was evaluated by potency testing at 0-month, 1 -month, 3-month, 4-month and 6-month time points. The nasal spray devices (3 devices per each time point) were thawed at room temperature for about one hour. The contents of each nasal spray device was released into a tube and then tested for potency using PFU Assay. The data presented in Tables 9-12 summarize the effect a faster freezing rate on the stability of liquid RSV formulations.
TABLE 9 THE STORAGE STABILITY (POTENCY) OF A LIQUID LRSV-rA38 FORMULATION FROZEN AT -196°C AND STORED AT EITHER -20°C OR -70°C
*The potency of the liquid LRSV-rA38 formulation before freezing at -196°C was 5.6 (log PFU/mL).
TABLE 10 THE STORAGE STABILITY (POTENCY) OF A LIQUID LRSV-rA38 FORMULATION FROZEN AT -70°C AND STORED AT EITHER -20°C OR -70°C
*The potency of the liquid LRSV-rA38 formulation before freezing at -70°C was 5.6 (log PFU/mL). TABLE 11 THE STORAGE STABILITY (POTENCY) OF A LIQUID LRSV-404 FORMULATION FROZEN AT -196°C AND STORED AT EITHER -20°C OR-70°C
*The potency of the liquid LRSV-404 formulation before freezing at -196°C was 6.2 (log PFU/mL).
TABLE 12 THE STORAGE STABILITY (POTENCY) OF A LIQUID LRSV-404 FORMULATION FROZEN AT -70°C AND STORED AT EITHER -20°C OR -70°C
*The potency of the liquid LRSV-404 formulation before freezing at -70°C was 6.2 (log PFU/mL). It was observed from these data, that the RSV formulations frozen with the liquid nitrogen ("fast" freezing) were stable at both storage temperatures (-20°C and -70°C) (Table 9 and Table 11). The RSV formulations frozen on the shelf of the freezer at -70°C ("slow" freezing) showed decreases in potencies and high variability of potency at different time points (Table 10 and Table 12). The influence of the freezing on spray performance was evaluated by measurement of Droplet Size Distribution using a Malvern SprayTec Particle Sizer. The analysis was performed for spray devices filled with the liquid LRSV-rA38 formulation described above. Droplet Size Distribution was measured for spray devices (ten devices per test) as follows: (a) nasal spray device filled with RSV, but not frozen, (b) nasal spray device filled with RSV, frozen in liquid nitrogen and stored for 3 month at -70°C, (c) nasal spray device filled with RSV, frozen in liquid nitrogen and stored for 3 month at -20°C, (d) nasal spray device filled with RSV, frozen in a -70°C freezer and stored for 3 month at -70°C, and (e) nasal spray device filled with RSV, frozen in a -70°C freezer and stored for 3 month at -20°C. Since the BD Accuspray™ nasal spray device is designed to perform an intranasal vaccination by 2 consecutive sprays (separately to each nostril), each spray was analyzed. The value of fraction of droplets (%) with a particle size less than 10 μm was used as criterion (increase of mass of the fraction with the particle size less than 10 μm was unacceptable). The results of the analysis are summarized in Table 13. The freezing and 3-month storage of frozen spray devices did not affect spray performance. There was no increase observed in total mass of droplets with a diameter less than 10 μm.
TABLE 13 SPRAY PERFORMANCE OF BD ACCUSPRAY™ DEVICES AT DIFFERENT CONDITIONS
5-^
REFERENCES
U.S. Patent No. 4,084,330 U.S. Patent No. 5,489,266 U.S. Patent No. 5,732,837 U.S. Patent No. 5,882,651 U.S. Patent No. 5,932,222 U.S. Patent No. 5,993,824 U.S. Patent No. 6,077,514 U.S. Patent No. 6,284,254 U.S. Patent No. 6,410,023
Ayra, Vaccine, 19:595-597, 2001.
Carpenter et. al., "Rational design of stable lyophilized protein formulations: theory and practice". Pharm. Biotechnol., 13:109-33, 2002. Chanock et al., Pediatrics, 90:137-142., 1992.
Crowe, "Current Approaches to the Development of vaccines against disease Caused by Respiratory Syncytial Virus (RSV) and Parainfluenza Virus (PIV): A meeting report from the WHO Programme for Vaccine Development", Vaccine, 13:415-421, 1995. Franks, "Freeze-drying: from empiricism to predictability. The significance of glass transitions". Dev. Biol. Stand., 74:9-18, 1992. Glezen et al., Am. J. Dis. Child. 140, 143-146, 1986. Glezen et al., J. Pediatr., 98:708-715, 1981.
Gupta et. al., "Stabilization of RSV against thermal inactivation and freeze-thaw cycles for development and control of RSV vaccines and immune globulin," Vaccine, 14:1417-1420, 1996. Hambling, "Survival of the RSV during storage under various conditions", Br. J. Exp. Pathol., 45:647-655, 1964. Hatley, "The effective use of differential scanning calorimetry in the optimisation of freeze-drying processes and formulations". Dev. Biol. Stand., 74:105-119, 1992. Hilleman, Rev. Infect. Dis., 11 (Suppl. 3):S613-616, 1989. Katz, "New vaccine development establishing priorities", Vol. 1 , Washington: National Academic Press., pp. 397-409, 1985. Kneyber and Kimpen, "Current Concepts on Active Immunization Against Respiratory Syncytial Virus For Infants and Young Children", Pediatr. Infect. Dis. J., 21 :685-696, 2002.
Lemon and Milstein, Int. J. Technol. Assess. Health Care, 10:177-184, 1994.
Martin et al., J. Lancet, 1035-1038, 1978.
McConnochie et al., "Variation in severity of respiratory syncytial virus infections with subtype", J. Pediatr. 117:52-62, 1990. Mclntosh and Chanock, Fields Virology (Fields and Knipe, Eds.) 1045-1075, Raven Press, Ltd., New York, 1990. Melnick and Wallis, Proc. Soc. Exp. Biol. Med., 112:894-897, 1963. Rasmussen et al., Am. J. Dis. Child, 126:465-469, 1973.
Rey and May, "Freeze-Drying/Lyophilization of Pharmaceutical and Biological Products", New York: Marcel Dekker, 1999.
Robbins and Freeman, Sci. Am., 259:126-133, 1988. Stark et al., "Occurrence of respiratory syncytial virus subtypes in hospitalized children in Cleveland, Ohio from 1985 to 1988," Pediatr. Pulmonol., 11 :98- 102, 1991. Wertz and Sullender, Biotech, 20:151-176, 1992.
Wulff et al., "RSV: Properties of strains propagated in monkey kidney cell cultures", Proc. Soc. Exp. Biol. Med., 115:458-462, 1964.

Claims

What is Claimed is:
1. A process for producing a storage stable virus composition comprising respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof, the process comprising: (a) freezing the virus composition below its glass transition temperature in a time of 60 minutes or less; and (b) lyophilizing the virus composition, wherein the lyophilized virus composition is a stable for at least one year at a storage temperature of about 1°C to about 10°C.
2. The process of claim 1, wherein the glass transition temperature is about -40°C to about -50°C.
3. The process of claim 1 , wherein the glass transition temperature is about -30°C to about -40°C.
4. The process of claim 3, wherein the glass transition temperature of about -35°C is reached in a time of 40 minutes or less.
5. The process of claim 3, wherein the glass transition temperature of about -35°C is reached in a time of 20 minutes or less.
6. The process of claim 1 , wherein the virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
7. The process of claim 6, wherein the virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
8. The process of claim 7, further comprising about 0.25 mM to about 25 mM N- 2-hydroxyethylpiperazine-N'-2-ethanesulfonic acid (HEPES).
9. The process of claim 7, further comprising about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
10. The process of claim 7, further comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
11. The process of claim 10, further comprising sucrose, L(+)-glutamic acid or L(+)-glutamic acid monosodium salt or a mixture of L(+)-glutamic acid/L(+)-glutamic acid monosodium salt, and human albumin (HA).
12. The process of claim 11 , where HA is native or recombinant.
13. The process of claim 11 , further comprising soy peptone.
14. The process of claim 11, further comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
15. The process of claim 14, where about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
16. The process of claim 13, comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10 g/L HA, and about 50 g/L soy peptone.
17. The process of claim 1 , wherein the storage temperature is 5°C.
18. The process of claim 1 , wherein the virus composition has less than about a 1.0 log PFU loss after one year of storage at about 1 °C to about 10°C.
19. The process of claim 1 , wherein the virus composition is at least 4.0 log PFU per 0.2 mL after one year of storage at about 1 °C to about 10°C.
20. The process of claim 1 , wherein lyophilizing the virus composition in step (b) comprises about 0.2 mL to about 1.0 mL of the virus composition in a suitable container means.
21. The process of claim 20, wherein a container means is further defined as a vial, a tube or a nasal spray device.
22. The process of claim 1 , wherein lyophilizing the virus composition is further defined as: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) placing the vial on a lyophilization shelf and decreasing the shelf temperature from 5°C to -50°C at a rate of about -1.0°C per minute to about -2.0 °C per minute; (c) holding the shelf temperature at about -50°C for 60 minutes; (d) reducing chamber pressure to 0.10 Torr and holding the shelf temperature at about -50°C for 30-60 minutes; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes, and (g) filling the vial with nitrogen gas and hermetically sealing the vial.
23. The process of claim 1 , wherein lyophilizing the virus composition is further defined as: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) freezing a lyophilization shelf to a temperature of about -70°C; (c) placing the vial on the lyophilization shelf and holding the temperature at about -70°C for about 60 minutes; (d) reduction of chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -50°C at a rate of about 1.0°C per minute; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C per minute at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes, and (g) filling the vial with nitrogen gas and hermetically sealing the vial.
24. A process for producing a lyophilization stable bulk volume virus compositions comprising respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof, the process comprising: (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; (b) freezing the virus composition below its glass transition temperature for at least about 20 minutes in a liquid nitrogen bath; and (c) lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization.
25. The process of claim 24, wherein the glass transition temperature is about -45°C.
26. The process of claim 24, wherein the glass transition temperature is a temperature of about -35°C.
27. The process of claim 24, wherein the lyophilization tray is a Lyoguard® lyophilization tray.
28. The process of claim 24, wherein the volume of the virus composition is at least 500 mL.
29. The process of claim 24, wherein the volume of the virus composition is at least 1000 mL
30. The process of claim 24, wherein the virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
31. The process of claim 30, wherein the virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
32. The process of claim 31 , further comprising about 2.5 mM to about 25 mM HEPES.
33. The process of claim 31 , further comprising about 0.1 mM to about 1 mM magnesium chloride, and about 0.1 mM to about 1 mM calcium chloride.
34. The process of claim 31 , further comprising about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride, and about 0.1 mM to about 1 mM calcium chloride.
35. The process of claim 34, further comprising sucrose, L(+)-glutamic acid or L(+)-glutamic acid monosodium salt and human albumin (HA).
36. The process of claim 35, where HA is native or recombinant.
37. The process of claim 35, further comprising soy peptone.
38. The process of claim 35, further comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
39. The process of claim 38, where about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
40. The process of claim 37, comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L HA, and about 50 g/L soy peptone.
41. The process of claim 24, wherein lyophilizing the bulk volume virus composition is further defined as: (a) placing the tray comprising the frozen virus composition at a temperature of about -50°C on a lyophilization shelf pre-cooled to a temperature of about -50°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -50°C to -23°C at a rate of about 0.23°C per minute at about 0.10 Torr; (c) holding the shelf temperature at about -23°C for about 80 hours to about 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the shelf temperature at about 15°C and at about 0.02 Torr for about 30 hours to about 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding the shelf temperature at about 25°C and at about 0.02 Torr for about 10 hours, and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch.
42. The process of claim 24, wherein lyophilizing the bulk volume virus composition is further defined as: (a) placing the tray comprising the frozen virus composition at a temperature of about -70°C on a lyophilization shelf pre-cooled to a temperature of about -70°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -23°C at a rate of about 0.23°C per minute; (c) holding the shelf temperature at about -23°C at about 0.10 Torr for about 80 to 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the temperature at about 15°C and 0.02 Torr for about 30 to 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding the temperature at about 25°C for about 10 hours, and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch.
43. A process for producing a storage stable liquid virus composition comprising respiratory syncytial virus (RSV), a parainfluenza virus (PIV), or a combination thereof, the process comprising: (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a nasal spray device; (c) inserting the nasal spray device of step (b) into a metal holder; (d) placing the metal holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the nasal spray device from the metal holder; and (f) storing the nasal spray device at temperature from about -20°C to about -70°C, wherein the virus composition after steps (a) through (f) has less than about a 0.5 log PFU loss after 6 months storage.
44. The process of claim 43, wherein the metal holder is aluminum.
45. The process of claim 43, wherein the metal holder is stainless steel.
46. The process of claim 43, wherein the virus composition is at least 4.0 log PFU/0.2 mL after steps (a) through (f).
47. The process of claim 43, wherein the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -20°C.
48. The process of claim 43, wherein the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -70°C.
49. The process of claim 43, wherein the liquid virus composition is formulated in the absence of a protein stabilizer.
50. The process of claim 43, wherein the virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
51. The process of claim 43, wherein the virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
52. The process of claim 51, further comprising about 0.25 mM to about 25 mM HEPES.
53. The process of claim 51 , further comprising about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
54. The process of claim 51 , further comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
55. The process of claim 54, further comprising sucrose and L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt.
56. The process of claim 55, further comprising about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof.
57. A storage stable virus composition produced according to the process of claim 1.
58. A lyophilization stable bulk volume virus composition produced according to the process of claim 24.
59. A storage stable frozen liquid virus composition produced according to the process of claim 43.
60. An immunogenic composition comprising the virus composition produced by the process of claim 1 , dissolved in a pharmaceutically acceptable carrier.
61. An immunogenic composition comprising the virus composition produced by the process of claim 24, dissolved in a pharmaceutically acceptable carrier.
62. An immunogenic composition comprising the nasal spray virus composition produced by the process of claim 43.
63. A process for producing a storage stable virus composition comprising a virus selected from the group consisting of herpes simplex virus (HSV), cytomegalovirus (CMV), Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, human papilloma virus (HPV), polyoma virus, metapneumovirus, coronavirus, vesicular stomatitis virus (VSV) and Venezuelan equine encephalitis virus (VEE), the process comprising: (a) freezing the virus composition below its glass transition temperature in a time of 60 minutes or less; and (b) lyophilizing the virus composition, wherein the lyophilized virus composition is a stable for at least one year at a storage temperature of about 1°C to about 10°C.
64. The process of claim 63, wherein the glass transition temperature is about -40°C to about -50°C.
65. The process of claim 63, wherein the glass transition temperature is about -30°C to about -40°C.
66. The process of claim 65, wherein the glass transition temperature of about -35°C is reached in a time of 40 minutes or less.
67. The process of claim 65, wherein the glass transition temperature of about -35°C is reached in a time of 20 minutes or less.
68. The process of claim 63, wherein the virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
69. The process of claim 68, wherein the virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
70. The process of claim 69, further comprising about 0.25 mM to about 25 mM N-2-hydroxyethylpiperazine-N'-2-ethanesulfonic acid (HEPES).
71. The process of claim 69, further comprising about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
72. The process of claim 69, further comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
73. The process of claim 72, further comprising sucrose, L(+)-glutamic acid or L(+)-glutamic acid monosodium salt or a mixture of L(+)-glutamic acid/L(+)-glutamic acid monosodium salt, and human albumin (HA).
74. The process of claim 73, where HA is native or recombinant.
75. The process of claim 73, further comprising soy peptone.
76. The process of claim 73, further comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about
2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
77. The process of claim 76, where about 1.0 g/L to about 10.0 g/L HA is substituted with about 50 g/L soy peptone.
78. The process of claim 73, comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L to about 10 g/L HA, and about 50 g/L soy peptone.
79. The process of claim 63, wherein the storage temperature is 5°C.
80. The process of claim 63, wherein the virus composition has less than about a 1.0 log PFU loss after one year of storage at about 1 °C to about 10°C.
81. The process of claim 63, wherein the virus composition is at least 4.0 log PFU per 0.2 mL after one year of storage at about 1°C to about 10°C.
82. The process of claim 63, wherein lyophilizing the virus composition in step (b) comprises about 0.2 mL to about 1.0 mL of the virus composition in a suitable container means.
83. The process of claim 82, wherein a container means is further defined as a vial, a tube or a nasal spray device.
84. The process of claim 63, wherein lyophilizing the virus composition is further defined as: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) placing the vial on a lyophilization shelf and decreasing the shelf temperature from 5°C to -50°C at a rate of about -1.0°C per minute to about -2.0 °C per minute; (c) holding the shelf temperature at about -50°C for 60 minutes; (d) reducing chamber pressure to 0.10 Torr and holding the shelf temperature at about -50°C for 30-60 minutes; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes, and (g) filling the vial with nitrogen gas and hermetically sealing the vial.
85. The process of claim 63, wherein lyophilizing the virus composition is further defined as: (a) placing about 0.5 mL to 0.6 mL of the virus composition in a vial and cooling to a temperature of about 5°C; (b) freezing a lyophilization shelf to a temperature of about -70°C; (c) placing the vial on the lyophilization shelf and holding the temperature at about -70°C for about 60 minutes; (d) reduction of chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -50°C at a rate of about 1.0°C per minute; (e) increasing the shelf temperature from -50°C to 0°C at a rate of about 1.0°C per minute to about 2.0°C per minute at about 0.10 Torr and holding the shelf temperature at about 0°C for about 540 minutes to about 720 minutes; (f) increasing the shelf temperature from 0°C to 15°C at a rate of about 0.5°C per minute at about 0.10 Torr and holding the shelf temperature at about 15°C for about 600 minutes to about 720 minutes, and (g) filling the vial with nitrogen gas and hermetically sealing the vial.
86. A process for producing a lyophilization stable bulk volume virus compositions comprising a virus selected from the group consisting of HSV, CMV, Epstein- Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, HPV, polyoma virus, metapneumovirus, coronavirus, VSV and VEE, the process comprising: (a) placing a liquid virus composition having a volume of at least 50 mL in a lyophilization tray; (b) freezing the virus composition below its glass transition temperature for at least about 20 minutes in a liquid nitrogen bath; and (c) lyophilizing the virus composition, wherein the lyophilized virus composition has less than about a 0.5 log PFU loss relative to the virus composition before lyophilization.
87. The process of claim 86, wherein the glass transition temperature is about -45°C.
88. The process of claim 86, wherein the glass transition temperature is a temperature of about -35°C.
89. The process of claim 86, wherein the lyophilization tray is a Lyoguard® lyophilization tray.
90. The process of claim 86, wherein the volume of the virus composition is at least 500 mL.
91. The process of claim 86, wherein the volume of the virus composition is at least 1000 mL
92. The process of claim 86, wherein the virus composition is formulated iri a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
93. The process of claim 92, wherein the virus composition is formulated in a 10 mM phosphate * buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
94. The process of claim 93, further comprising about 2.5 mM to about 25 mM HEPES.
95. The process of claim 93, further comprising about 0.1 mM to about 1 mM magnesium chloride, and about 0.1 mM to about 1 mM calcium chloride.
96. The process of claim 93, further comprising about 2.5 mM to about 25 mM HEPES, about 0.1 mM to about 1 mM magnesium chloride, and about 0.1 mM to about 1 mM calcium chloride.
97. The process of claim 96, further comprising sucrose, L(+)-glutamic acid or L(+)-glutamic acid monosodium salt and human albumin (HA).
98. The process of claim 97, where HA is native or recombinant.
99. The process of claim 97, further comprising soy peptone.
100. The process of claim 97, further comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, and about 1.0 g/L to about 10.0 g/L HA.
101. The process of claim 100, where about 1.0 g/L to about 10.0 g/L HA. is substituted with about 50 g/L soy peptone.
102. The process of claim 99, comprising about 50 g/L sucrose, about 0.049 mM to about 2.45 mM L(+)-glutamic acid or about 0.049 mM to about 2.45 mM L(+)-glutamic acid monosodium salt or a mixture thereof, about 1.0 g/L HA, and about 50 g/L soy peptone.
103. The process of claim 86, wherein lyophilizing the bulk volume virus composition is further defined as: (a) placing the tray comprising the frozen virus composition at a temperature of about -50°C on a lyophilization shelf pre-cooled to a temperature of about -50°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -50°C to -23°C at a rate of about 0.23°C per minute at about 0.10 Torr; (c) holding the shelf temperature at about -23°C for about 80 hours to about 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the shelf temperature at about 15°C and at about 0.02 Torr for about 30 hours to about 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (h) holding the shelf temperature at about 25°C and at about 0.02 Torr for about 10 hours, and (i) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch.
104. The process of claim 86, wherein lyophilizing the bulk volume virus composition is further defined as: (a) placing the tray comprising the frozen virus composition at a temperature of about -70°C on a lyophilization shelf pre-cooled to a temperature of about -70°C and holding the temperature for about 60 minutes; (b) reducing chamber pressure to 0.10 Torr and increasing the shelf temperature from -70°C to -23°C at a rate of about 0.23°C per minute; (c) holding the shelf temperature at about -23°C at about 0.10 Torr for about 80 to 100 hours; (d) reducing chamber pressure to 0.02 Torr and increasing the shelf temperature from -23°C to 15°C at a rate of about 0.23°C per minute; (e) holding the temperature at about 15°C and 0.02 Torr for about 30 to 40 hours; (f) increasing the shelf temperature from 15°C to 25°C at a rate of about 0.17°C per minute at 0.02 Torr; (g) holding the temperature at about 25°C for about 10 hours, and (h) filling the chamber with nitrogen gas and hermetically sealing the tray under nitrogen gas in an aluminum pouch.
105. A process for producing a storage stable liquid virus composition comprising a virus selected from the group consisting of HSV, CMV, Epstein-Barr virus, Varicella-Zoster virus, mumps virus, measles virus, influenza virus, poliovirus, rhinovirus, adenovirus, hepatitis A virus, hepatitis B virus, hepatitis C virus, Norwalk virus, togavirus, alphavirus, rubella virus, rabies virus, Marburg virus, Ebola virus, papilloma virus, HPV, polyoma virus, metapneumovirus, coronavirus, VSV and VEE, the process comprising: (a) equilibrating a metal plate in a liquid nitrogen bath; (b) placing a liquid virus composition in a nasal spray device; (c) inserting the nasal spray device of step (b) into a metal holder; (d) placing the metal holder on the equilibrated metal plate of step (a) for about ten minutes; (e) removing the nasal spray device from the metal holder; and (f) storing the nasal spray device at temperature from about -20°C to about -70°C, wherein the virus composition after steps (a) through (f) has less than about a 0.5 log PFU loss after 6 months storage.
106. The process of claim 105, wherein the metal holder is aluminum.
107. The process of claim 105, wherein the metal holder is stainless steel.
108. The process of claim 105, wherein the virus composition is at least 4.0 log PFU/0.2 mL after steps (a) through (f).
109. The process of claim 105, wherein the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -20°C.
110. The process of claim 105, wherein the virus composition is at least 4.0 log PFU/0.2 mL after a six month storage at a temperature of -70°C.
111. The process of claim 105, wherein the liquid virus composition is formulated in the absence of a protein stabilizer.
112. The process of claim 105, wherein the virus composition is formulated in a 5.0 mM to about 20 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
113. The process of claim 105, wherein the virus composition is formulated in a 10 mM phosphate buffer solution comprising sodium and/or potassium monobasic and dibasic salts and having pH of about 6.5 to about 7.8.
114. The process of claim 113, further comprising about 0.25 mM to about 25 mM HEPES.
115. The process of claim 113, further comprising about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
116. The process of claim 113, further comprising about 0.25 mM to about 25 mM HEPES, about 0.01 mM to about 1 mM magnesium chloride, and about 0.01 mM to about 1 mM calcium chloride.
117. The process of claim 116, further comprising sucrose and L(+)-glutamic acid, L(+)-glutamic acid monosodium salt or a mixture of L(+)-glutamic acid and L(+)-glutamic acid monosodium salt.
118. The process of claim 117, further comprising about 75 g/L sucrose and about 4.9 mM L(+)-glutamic acid or about 4.9 mM L(+)-glutamic acid monosodium salt or a mixture thereof.
119 A storage stable virus composition produced according to the process of claim 63.
120. A lyophilization stable bulk volume virus composition produced according to the process of claim 86.
121. A storage stable frozen liquid virus composition produced according to the process of claim 105.
122. An immunogenic composition comprising the virus composition produced by the process of claim 63, dissolved in a pharmaceutically acceptable carrier.
123. An immunogenic composition comprising the virus composition produced by the process of claim 86, dissolved in a pharmaceutically acceptable carrier.
124. An immunogenic composition comprising the nasal spray virus composition produced by the process of claim 105.
EP04814040.4A 2003-12-17 2004-12-10 Method for producing storage stable RSV compositions Expired - Lifetime EP1701738B1 (en)

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Families Citing this family (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5110696B2 (en) * 2004-11-05 2012-12-26 ウェルスタット バイオロジクス コーポレイション Stable and filterable enveloped virus formulation
EP1942932B1 (en) * 2005-08-08 2013-05-08 Oregon Health and Science University Inactivating pathogens with hydrogen peroxide for vaccine production
ATE523207T1 (en) * 2005-09-16 2011-09-15 Merial Ltd STABILIZERS FOR FREEZE-DRIED VACCINES
MX2008014391A (en) * 2006-05-12 2009-03-06 Bharat Biotech Int Ltd A composition useful as a vaccine.
GB0614460D0 (en) * 2006-07-20 2006-08-30 Novartis Ag Vaccines
DE102007023198A1 (en) * 2007-05-18 2008-11-20 Boehringer Ingelheim Pharma Gmbh & Co. Kg Magazine for cylindrical vessels
BR112012000588A2 (en) * 2009-07-13 2020-08-11 Bharat Biotech International Limited composition, liquid composition, lyophilized composition and method to produce an attenuated rotavirus
RU2012144612A (en) 2010-04-15 2014-05-20 Син Ниппон Байомедикал Лэборэтэриз, Лтд. METHOD AND COMPOSITIONS FOR INTRANASAL DELIVERY
MX350047B (en) * 2010-08-13 2017-08-24 Advanced Bionutrition Corp COMPOSITION OF DRY STORAGE STABILIZATION FOR BIOLOGICAL MATERIALS.
CN103269716B (en) * 2010-12-02 2015-05-27 昂科利蒂克斯生物科技公司 Lyophilized viral formulations
WO2012075379A2 (en) 2010-12-02 2012-06-07 Oncolytics Biotech Inc. Liquid viral formulations
US8771402B2 (en) * 2011-06-14 2014-07-08 Ut-Battelle, Llc Membrane based apparatus for measurement of volatile particles
LT2741740T (en) 2011-08-12 2017-08-10 Merial, Inc. Vacuum-assisted preservation of biological products, in particular of vaccines
WO2013040196A2 (en) 2011-09-14 2013-03-21 Immunovative Therapies, Ltd. Automated device for biologic drug distribution
BR112014020930A2 (en) 2012-03-05 2017-06-27 De Staat Der Nederlanden Vert Door De Mini Van Vws Miniie Van Volksgezondheid Welzijn En Sport method for producing a dry formulation of a biopharmaceutical agent, and, formulation of a biopharmaceutical agent
CN102813933A (en) * 2012-08-30 2012-12-12 青岛康地恩药业股份有限公司 Chicken infectious bursal disease egg yolk antibody cryoprotectant
TWI610861B (en) * 2012-09-13 2018-01-11 梵提夫免疫療法公司 Automated device for a biologic drug distribution
TWI690322B (en) * 2012-10-02 2020-04-11 法商傳斯堅公司 Virus-containing formulations and their use
US10137186B2 (en) 2013-03-14 2018-11-27 Takeda Vaccines, Inc. Compositions and methods for live, attenuated alphavirus formulations
JP7130744B2 (en) * 2017-11-01 2022-09-05 メルク・シャープ・アンド・ドーム・コーポレーション Stable formulation of cytomegalovirus
CN110938603B (en) * 2019-12-20 2022-11-22 阿吉安(福州)基因医学检验实验室有限公司 Universal virus sample preservation buffer solution and preparation method thereof

Family Cites Families (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4084330A (en) 1976-07-02 1978-04-18 Fts Systems, Inc. Flask for freeze drying with adjustable seal
US4273762A (en) * 1979-12-03 1981-06-16 Merck & Co., Inc. Lyophilization process for live viral compositions
TW275632B (en) 1992-04-21 1996-05-11 American Cyanamid Co
IL105456A (en) 1992-04-21 1996-12-05 American Home Prod Attenuated respiratory syncytial virus vaccine compositions
US5489266A (en) 1994-01-25 1996-02-06 Becton, Dickinson And Company Syringe assembly and method for lyophilizing and reconstituting injectable medication
CA2178496A1 (en) 1994-08-19 1996-02-29 C. Bradford Jones Vented vial for freeze-drying and method of minimizing contamination of freeze-dried products
US6077514A (en) 1996-04-04 2000-06-20 The Regents Of The University Of Michigan Attenuated respiratory syncytial virus
EP0912724B1 (en) 1996-07-15 2009-12-09 The Government of The United States of America, as represented by The Department of Health and Human Services Production of attenuated respiratory syncytial virus vaccines from cloned nucleotide sequences
US6290967B1 (en) * 1996-12-20 2001-09-18 Merck & Co., Inc. Stabilizers for lyophilized vaccines
US6410023B1 (en) 1997-05-23 2002-06-25 United States Of America Recombinant parainfluenza virus vaccines attenuated by deletion or ablation of a non-essential gene
AU2001278337A1 (en) * 2000-07-31 2002-02-13 Aventis Pasteur Limited Respiratory syncytial virus vaccine
GB0024089D0 (en) * 2000-10-02 2000-11-15 Smithkline Beecham Biolog Novel compounds
AU2003230908A1 (en) * 2002-04-11 2003-10-27 Medimmune Vaccines, Inc. Spray freeze dry of compositions for intranasal administration
NZ538394A (en) 2002-08-26 2008-06-30 Pfizer Prod Inc Vaccine for respiratory and reproductive system infections in cattles

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO2005058356A3 *

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